1 | /* ehopt.c--optimize gcc exception frame information.
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2 | Copyright 1998, 2000, 2001, 2003 Free Software Foundation, Inc.
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3 | Written by Ian Lance Taylor <ian@cygnus.com>.
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4 |
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5 | This file is part of GAS, the GNU Assembler.
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6 |
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7 | GAS is free software; you can redistribute it and/or modify
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8 | it under the terms of the GNU General Public License as published by
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9 | the Free Software Foundation; either version 2, or (at your option)
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10 | any later version.
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11 |
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12 | GAS is distributed in the hope that it will be useful,
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13 | but WITHOUT ANY WARRANTY; without even the implied warranty of
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14 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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15 | GNU General Public License for more details.
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16 |
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17 | You should have received a copy of the GNU General Public License
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18 | along with GAS; see the file COPYING. If not, write to the Free
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19 | Software Foundation, 59 Temple Place - Suite 330, Boston, MA
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20 | 02111-1307, USA. */
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21 |
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22 | #include "as.h"
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23 | #include "subsegs.h"
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24 |
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25 | /* We include this ELF file, even though we may not be assembling for
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26 | ELF, since the exception frame information is always in a format
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27 | derived from DWARF. */
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28 |
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29 | #include "elf/dwarf2.h"
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30 |
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31 | /* Try to optimize gcc 2.8 exception frame information.
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32 |
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33 | Exception frame information is emitted for every function in the
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34 | .eh_frame or .debug_frame sections. Simple information for a function
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35 | with no exceptions looks like this:
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36 |
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37 | __FRAME_BEGIN__:
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38 | .4byte .LLCIE1 / Length of Common Information Entry
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39 | .LSCIE1:
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40 | #if .eh_frame
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41 | .4byte 0x0 / CIE Identifier Tag
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42 | #elif .debug_frame
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43 | .4byte 0xffffffff / CIE Identifier Tag
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44 | #endif
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45 | .byte 0x1 / CIE Version
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46 | .byte 0x0 / CIE Augmentation (none)
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47 | .byte 0x1 / ULEB128 0x1 (CIE Code Alignment Factor)
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48 | .byte 0x7c / SLEB128 -4 (CIE Data Alignment Factor)
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49 | .byte 0x8 / CIE RA Column
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50 | .byte 0xc / DW_CFA_def_cfa
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51 | .byte 0x4 / ULEB128 0x4
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52 | .byte 0x4 / ULEB128 0x4
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53 | .byte 0x88 / DW_CFA_offset, column 0x8
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54 | .byte 0x1 / ULEB128 0x1
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55 | .align 4
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56 | .LECIE1:
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57 | .set .LLCIE1,.LECIE1-.LSCIE1 / CIE Length Symbol
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58 | .4byte .LLFDE1 / FDE Length
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59 | .LSFDE1:
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60 | .4byte .LSFDE1-__FRAME_BEGIN__ / FDE CIE offset
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61 | .4byte .LFB1 / FDE initial location
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62 | .4byte .LFE1-.LFB1 / FDE address range
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63 | .byte 0x4 / DW_CFA_advance_loc4
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64 | .4byte .LCFI0-.LFB1
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65 | .byte 0xe / DW_CFA_def_cfa_offset
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66 | .byte 0x8 / ULEB128 0x8
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67 | .byte 0x85 / DW_CFA_offset, column 0x5
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68 | .byte 0x2 / ULEB128 0x2
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69 | .byte 0x4 / DW_CFA_advance_loc4
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70 | .4byte .LCFI1-.LCFI0
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71 | .byte 0xd / DW_CFA_def_cfa_register
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72 | .byte 0x5 / ULEB128 0x5
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73 | .byte 0x4 / DW_CFA_advance_loc4
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74 | .4byte .LCFI2-.LCFI1
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75 | .byte 0x2e / DW_CFA_GNU_args_size
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76 | .byte 0x4 / ULEB128 0x4
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77 | .byte 0x4 / DW_CFA_advance_loc4
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78 | .4byte .LCFI3-.LCFI2
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79 | .byte 0x2e / DW_CFA_GNU_args_size
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80 | .byte 0x0 / ULEB128 0x0
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81 | .align 4
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82 | .LEFDE1:
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83 | .set .LLFDE1,.LEFDE1-.LSFDE1 / FDE Length Symbol
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84 |
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85 | The immediate issue we can address in the assembler is the
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86 | DW_CFA_advance_loc4 followed by a four byte value. The value is
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87 | the difference of two addresses in the function. Since gcc does
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88 | not know this value, it always uses four bytes. We will know the
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89 | value at the end of assembly, so we can do better. */
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90 |
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91 | struct cie_info
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92 | {
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93 | unsigned code_alignment;
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94 | int z_augmentation;
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95 | };
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96 |
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97 | static int get_cie_info PARAMS ((struct cie_info *));
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98 |
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99 | /* Extract information from the CIE. */
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100 |
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101 | static int
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102 | get_cie_info (info)
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103 | struct cie_info *info;
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104 | {
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105 | fragS *f;
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106 | fixS *fix;
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107 | int offset;
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108 | char CIE_id;
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109 | char augmentation[10];
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110 | int iaug;
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111 | int code_alignment = 0;
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112 |
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113 | /* We should find the CIE at the start of the section. */
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114 |
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115 | #if defined (BFD_ASSEMBLER) || defined (MANY_SEGMENTS)
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116 | f = seg_info (now_seg)->frchainP->frch_root;
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117 | #else
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118 | f = frchain_now->frch_root;
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119 | #endif
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120 | #ifdef BFD_ASSEMBLER
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121 | fix = seg_info (now_seg)->frchainP->fix_root;
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122 | #else
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123 | fix = *seg_fix_rootP;
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124 | #endif
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125 |
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126 | /* Look through the frags of the section to find the code alignment. */
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127 |
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128 | /* First make sure that the CIE Identifier Tag is 0/-1. */
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129 |
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130 | if (strcmp (segment_name (now_seg), ".debug_frame") == 0)
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131 | CIE_id = (char)0xff;
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132 | else
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133 | CIE_id = 0;
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134 |
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135 | offset = 4;
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136 | while (f != NULL && offset >= f->fr_fix)
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137 | {
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138 | offset -= f->fr_fix;
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139 | f = f->fr_next;
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140 | }
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141 | if (f == NULL
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142 | || f->fr_fix - offset < 4
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143 | || f->fr_literal[offset] != CIE_id
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144 | || f->fr_literal[offset + 1] != CIE_id
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145 | || f->fr_literal[offset + 2] != CIE_id
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146 | || f->fr_literal[offset + 3] != CIE_id)
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147 | return 0;
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148 |
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149 | /* Next make sure the CIE version number is 1. */
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150 |
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151 | offset += 4;
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152 | while (f != NULL && offset >= f->fr_fix)
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153 | {
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154 | offset -= f->fr_fix;
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155 | f = f->fr_next;
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156 | }
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157 | if (f == NULL
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158 | || f->fr_fix - offset < 1
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159 | || f->fr_literal[offset] != 1)
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160 | return 0;
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161 |
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162 | /* Skip the augmentation (a null terminated string). */
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163 |
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164 | iaug = 0;
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165 | ++offset;
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166 | while (1)
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167 | {
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168 | while (f != NULL && offset >= f->fr_fix)
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169 | {
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170 | offset -= f->fr_fix;
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171 | f = f->fr_next;
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172 | }
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173 | if (f == NULL)
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174 | return 0;
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175 |
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176 | while (offset < f->fr_fix && f->fr_literal[offset] != '\0')
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177 | {
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178 | if ((size_t) iaug < (sizeof augmentation) - 1)
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179 | {
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180 | augmentation[iaug] = f->fr_literal[offset];
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181 | ++iaug;
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182 | }
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183 | ++offset;
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184 | }
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185 | if (offset < f->fr_fix)
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186 | break;
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187 | }
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188 | ++offset;
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189 | while (f != NULL && offset >= f->fr_fix)
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190 | {
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191 | offset -= f->fr_fix;
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192 | f = f->fr_next;
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193 | }
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194 | if (f == NULL)
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195 | return 0;
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196 |
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197 | augmentation[iaug] = '\0';
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198 | if (augmentation[0] == '\0')
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199 | {
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200 | /* No augmentation. */
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201 | }
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202 | else if (strcmp (augmentation, "eh") == 0)
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203 | {
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204 | /* We have to skip a pointer. Unfortunately, we don't know how
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205 | large it is. We find out by looking for a matching fixup. */
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206 | while (fix != NULL
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207 | && (fix->fx_frag != f || fix->fx_where != offset))
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208 | fix = fix->fx_next;
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209 | if (fix == NULL)
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210 | offset += 4;
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211 | else
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212 | offset += fix->fx_size;
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213 | while (f != NULL && offset >= f->fr_fix)
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214 | {
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215 | offset -= f->fr_fix;
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216 | f = f->fr_next;
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217 | }
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218 | if (f == NULL)
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219 | return 0;
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220 | }
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221 | else if (augmentation[0] != 'z')
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222 | return 0;
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223 |
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224 | /* We're now at the code alignment factor, which is a ULEB128. If
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225 | it isn't a single byte, forget it. */
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226 |
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227 | code_alignment = f->fr_literal[offset] & 0xff;
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228 | if ((code_alignment & 0x80) != 0)
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229 | code_alignment = 0;
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230 |
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231 | info->code_alignment = code_alignment;
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232 | info->z_augmentation = (augmentation[0] == 'z');
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233 |
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234 | return 1;
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235 | }
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236 |
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237 | /* This function is called from emit_expr. It looks for cases which
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238 | we can optimize.
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239 |
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240 | Rather than try to parse all this information as we read it, we
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241 | look for a single byte DW_CFA_advance_loc4 followed by a 4 byte
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242 | difference. We turn that into a rs_cfa_advance frag, and handle
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243 | those frags at the end of the assembly. If the gcc output changes
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244 | somewhat, this optimization may stop working.
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245 |
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246 | This function returns non-zero if it handled the expression and
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247 | emit_expr should not do anything, or zero otherwise. It can also
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248 | change *EXP and *PNBYTES. */
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249 |
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250 | int
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251 | check_eh_frame (exp, pnbytes)
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252 | expressionS *exp;
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253 | unsigned int *pnbytes;
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254 | {
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255 | struct frame_data
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256 | {
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257 | enum frame_state
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258 | {
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259 | state_idle,
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260 | state_saw_size,
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261 | state_saw_cie_offset,
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262 | state_saw_pc_begin,
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263 | state_seeing_aug_size,
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264 | state_skipping_aug,
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265 | state_wait_loc4,
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266 | state_saw_loc4,
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267 | state_error,
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268 | } state;
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269 |
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270 | int cie_info_ok;
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271 | struct cie_info cie_info;
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272 |
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273 | symbolS *size_end_sym;
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274 | fragS *loc4_frag;
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275 | int loc4_fix;
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276 |
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277 | int aug_size;
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278 | int aug_shift;
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279 | };
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280 |
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281 | static struct frame_data eh_frame_data;
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282 | static struct frame_data debug_frame_data;
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283 | struct frame_data *d;
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284 |
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285 | /* Don't optimize. */
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286 | if (flag_traditional_format)
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287 | return 0;
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288 |
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289 | /* Select the proper section data. */
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290 | if (strcmp (segment_name (now_seg), ".eh_frame") == 0)
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291 | d = &eh_frame_data;
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292 | else if (strcmp (segment_name (now_seg), ".debug_frame") == 0)
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293 | d = &debug_frame_data;
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294 | else
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295 | return 0;
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296 |
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297 | if (d->state >= state_saw_size && S_IS_DEFINED (d->size_end_sym))
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298 | {
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299 | /* We have come to the end of the CIE or FDE. See below where
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300 | we set saw_size. We must check this first because we may now
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301 | be looking at the next size. */
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302 | d->state = state_idle;
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303 | }
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304 |
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305 | switch (d->state)
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306 | {
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307 | case state_idle:
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308 | if (*pnbytes == 4)
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309 | {
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310 | /* This might be the size of the CIE or FDE. We want to know
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311 | the size so that we don't accidentally optimize across an FDE
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312 | boundary. We recognize the size in one of two forms: a
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313 | symbol which will later be defined as a difference, or a
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314 | subtraction of two symbols. Either way, we can tell when we
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315 | are at the end of the FDE because the symbol becomes defined
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316 | (in the case of a subtraction, the end symbol, from which the
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317 | start symbol is being subtracted). Other ways of describing
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318 | the size will not be optimized. */
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319 | if ((exp->X_op == O_symbol || exp->X_op == O_subtract)
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320 | && ! S_IS_DEFINED (exp->X_add_symbol))
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321 | {
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322 | d->state = state_saw_size;
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323 | d->size_end_sym = exp->X_add_symbol;
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324 | }
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325 | }
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326 | break;
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327 |
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328 | case state_saw_size:
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329 | case state_saw_cie_offset:
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330 | /* Assume whatever form it appears in, it appears atomically. */
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331 | d->state += 1;
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332 | break;
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333 |
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334 | case state_saw_pc_begin:
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335 | /* Decide whether we should see an augmentation. */
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336 | if (! d->cie_info_ok
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337 | && ! (d->cie_info_ok = get_cie_info (&d->cie_info)))
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338 | d->state = state_error;
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339 | else if (d->cie_info.z_augmentation)
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340 | {
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341 | d->state = state_seeing_aug_size;
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342 | d->aug_size = 0;
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343 | d->aug_shift = 0;
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344 | }
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345 | else
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346 | d->state = state_wait_loc4;
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347 | break;
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348 |
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349 | case state_seeing_aug_size:
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350 | /* Bytes == -1 means this comes from an leb128 directive. */
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351 | if ((int)*pnbytes == -1 && exp->X_op == O_constant)
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352 | {
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353 | d->aug_size = exp->X_add_number;
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354 | d->state = state_skipping_aug;
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355 | }
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356 | else if (*pnbytes == 1 && exp->X_op == O_constant)
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357 | {
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358 | unsigned char byte = exp->X_add_number;
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359 | d->aug_size |= (byte & 0x7f) << d->aug_shift;
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360 | d->aug_shift += 7;
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361 | if ((byte & 0x80) == 0)
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362 | d->state = state_skipping_aug;
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363 | }
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364 | else
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365 | d->state = state_error;
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366 | if (d->state == state_skipping_aug && d->aug_size == 0)
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367 | d->state = state_wait_loc4;
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368 | break;
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369 |
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370 | case state_skipping_aug:
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371 | if ((int)*pnbytes < 0)
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372 | d->state = state_error;
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373 | else
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374 | {
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375 | int left = (d->aug_size -= *pnbytes);
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376 | if (left == 0)
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377 | d->state = state_wait_loc4;
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378 | else if (left < 0)
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379 | d->state = state_error;
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380 | }
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381 | break;
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382 |
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383 | case state_wait_loc4:
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384 | if (*pnbytes == 1
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385 | && exp->X_op == O_constant
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386 | && exp->X_add_number == DW_CFA_advance_loc4)
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387 | {
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388 | /* This might be a DW_CFA_advance_loc4. Record the frag and the
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389 | position within the frag, so that we can change it later. */
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390 | frag_grow (1);
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391 | d->state = state_saw_loc4;
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392 | d->loc4_frag = frag_now;
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393 | d->loc4_fix = frag_now_fix ();
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394 | }
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395 | break;
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396 |
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397 | case state_saw_loc4:
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398 | d->state = state_wait_loc4;
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399 | if (*pnbytes != 4)
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400 | break;
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401 | if (exp->X_op == O_constant)
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402 | {
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403 | /* This is a case which we can optimize. The two symbols being
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404 | subtracted were in the same frag and the expression was
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405 | reduced to a constant. We can do the optimization entirely
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406 | in this function. */
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407 | if (d->cie_info.code_alignment > 0
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408 | && exp->X_add_number % d->cie_info.code_alignment == 0
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409 | && exp->X_add_number / d->cie_info.code_alignment < 0x40)
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410 | {
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411 | d->loc4_frag->fr_literal[d->loc4_fix]
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412 | = DW_CFA_advance_loc
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413 | | (exp->X_add_number / d->cie_info.code_alignment);
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414 | /* No more bytes needed. */
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415 | return 1;
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416 | }
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417 | else if (exp->X_add_number < 0x100)
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418 | {
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419 | d->loc4_frag->fr_literal[d->loc4_fix] = DW_CFA_advance_loc1;
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420 | *pnbytes = 1;
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421 | }
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422 | else if (exp->X_add_number < 0x10000)
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423 | {
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424 | d->loc4_frag->fr_literal[d->loc4_fix] = DW_CFA_advance_loc2;
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425 | *pnbytes = 2;
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426 | }
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427 | }
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428 | else if (exp->X_op == O_subtract)
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429 | {
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430 | /* This is a case we can optimize. The expression was not
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431 | reduced, so we can not finish the optimization until the end
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432 | of the assembly. We set up a variant frag which we handle
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433 | later. */
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434 | int fr_subtype;
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435 |
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436 | if (d->cie_info.code_alignment > 0)
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437 | fr_subtype = d->cie_info.code_alignment << 3;
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438 | else
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439 | fr_subtype = 0;
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440 |
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441 | frag_var (rs_cfa, 4, 0, fr_subtype, make_expr_symbol (exp),
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442 | d->loc4_fix, (char *) d->loc4_frag);
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443 | return 1;
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444 | }
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445 | break;
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446 |
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447 | case state_error:
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448 | /* Just skipping everything. */
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449 | break;
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450 | }
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451 |
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452 | return 0;
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453 | }
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454 |
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455 | /* The function estimates the size of a rs_cfa variant frag based on
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456 | the current values of the symbols. It is called before the
|
---|
457 | relaxation loop. We set fr_subtype{0:2} to the expected length. */
|
---|
458 |
|
---|
459 | int
|
---|
460 | eh_frame_estimate_size_before_relax (frag)
|
---|
461 | fragS *frag;
|
---|
462 | {
|
---|
463 | offsetT diff;
|
---|
464 | int ca = frag->fr_subtype >> 3;
|
---|
465 | int ret;
|
---|
466 |
|
---|
467 | diff = resolve_symbol_value (frag->fr_symbol);
|
---|
468 |
|
---|
469 | if (ca > 0 && diff % ca == 0 && diff / ca < 0x40)
|
---|
470 | ret = 0;
|
---|
471 | else if (diff < 0x100)
|
---|
472 | ret = 1;
|
---|
473 | else if (diff < 0x10000)
|
---|
474 | ret = 2;
|
---|
475 | else
|
---|
476 | ret = 4;
|
---|
477 |
|
---|
478 | frag->fr_subtype = (frag->fr_subtype & ~7) | ret;
|
---|
479 |
|
---|
480 | return ret;
|
---|
481 | }
|
---|
482 |
|
---|
483 | /* This function relaxes a rs_cfa variant frag based on the current
|
---|
484 | values of the symbols. fr_subtype{0:2} is the current length of
|
---|
485 | the frag. This returns the change in frag length. */
|
---|
486 |
|
---|
487 | int
|
---|
488 | eh_frame_relax_frag (frag)
|
---|
489 | fragS *frag;
|
---|
490 | {
|
---|
491 | int oldsize, newsize;
|
---|
492 |
|
---|
493 | oldsize = frag->fr_subtype & 7;
|
---|
494 | newsize = eh_frame_estimate_size_before_relax (frag);
|
---|
495 | return newsize - oldsize;
|
---|
496 | }
|
---|
497 |
|
---|
498 | /* This function converts a rs_cfa variant frag into a normal fill
|
---|
499 | frag. This is called after all relaxation has been done.
|
---|
500 | fr_subtype{0:2} will be the desired length of the frag. */
|
---|
501 |
|
---|
502 | void
|
---|
503 | eh_frame_convert_frag (frag)
|
---|
504 | fragS *frag;
|
---|
505 | {
|
---|
506 | offsetT diff;
|
---|
507 | fragS *loc4_frag;
|
---|
508 | int loc4_fix;
|
---|
509 |
|
---|
510 | loc4_frag = (fragS *) frag->fr_opcode;
|
---|
511 | loc4_fix = (int) frag->fr_offset;
|
---|
512 |
|
---|
513 | diff = resolve_symbol_value (frag->fr_symbol);
|
---|
514 |
|
---|
515 | switch (frag->fr_subtype & 7)
|
---|
516 | {
|
---|
517 | case 0:
|
---|
518 | {
|
---|
519 | int ca = frag->fr_subtype >> 3;
|
---|
520 | assert (ca > 0 && diff % ca == 0 && diff / ca < 0x40);
|
---|
521 | loc4_frag->fr_literal[loc4_fix] = DW_CFA_advance_loc | (diff / ca);
|
---|
522 | }
|
---|
523 | break;
|
---|
524 |
|
---|
525 | case 1:
|
---|
526 | assert (diff < 0x100);
|
---|
527 | loc4_frag->fr_literal[loc4_fix] = DW_CFA_advance_loc1;
|
---|
528 | frag->fr_literal[frag->fr_fix] = diff;
|
---|
529 | break;
|
---|
530 |
|
---|
531 | case 2:
|
---|
532 | assert (diff < 0x10000);
|
---|
533 | loc4_frag->fr_literal[loc4_fix] = DW_CFA_advance_loc2;
|
---|
534 | md_number_to_chars (frag->fr_literal + frag->fr_fix, diff, 2);
|
---|
535 | break;
|
---|
536 |
|
---|
537 | default:
|
---|
538 | md_number_to_chars (frag->fr_literal + frag->fr_fix, diff, 4);
|
---|
539 | break;
|
---|
540 | }
|
---|
541 |
|
---|
542 | frag->fr_fix += frag->fr_subtype & 7;
|
---|
543 | frag->fr_type = rs_fill;
|
---|
544 | frag->fr_subtype = 0;
|
---|
545 | frag->fr_offset = 0;
|
---|
546 | }
|
---|