1 | /* Configurable Xtensa ISA support.
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2 | Copyright 2003 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 <stdio.h>
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21 | #include <stdlib.h>
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22 | #include <sys/types.h>
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23 | #include <string.h>
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24 |
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25 | #include "xtensa-isa.h"
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26 | #include "xtensa-isa-internal.h"
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27 |
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28 | xtensa_isa xtensa_default_isa = NULL;
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29 |
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30 | static int
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31 | opname_lookup_compare (const void *v1, const void *v2)
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32 | {
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33 | opname_lookup_entry *e1 = (opname_lookup_entry *)v1;
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34 | opname_lookup_entry *e2 = (opname_lookup_entry *)v2;
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35 |
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36 | return strcmp (e1->key, e2->key);
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37 | }
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38 |
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39 |
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40 | xtensa_isa
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41 | xtensa_isa_init (void)
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42 | {
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43 | xtensa_isa isa;
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44 | int mod;
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45 |
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46 | isa = xtensa_load_isa (0);
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47 | if (isa == 0)
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48 | {
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49 | fprintf (stderr, "Failed to initialize Xtensa base ISA module\n");
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50 | return NULL;
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51 | }
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52 |
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53 | for (mod = 1; xtensa_isa_modules[mod].get_num_opcodes_fn; mod++)
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54 | {
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55 | if (!xtensa_extend_isa (isa, mod))
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56 | {
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57 | fprintf (stderr, "Failed to initialize Xtensa TIE ISA module\n");
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58 | return NULL;
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59 | }
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60 | }
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61 |
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62 | return isa;
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63 | }
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64 |
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65 | /* ISA information. */
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66 |
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67 | static int
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68 | xtensa_check_isa_config (xtensa_isa_internal *isa,
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69 | struct config_struct *config_table)
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70 | {
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71 | int i, j;
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72 |
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73 | if (!config_table)
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74 | {
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75 | fprintf (stderr, "Error: Empty configuration table in ISA DLL\n");
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76 | return 0;
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77 | }
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78 |
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79 | /* For the first module, save a pointer to the table and record the
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80 | specified endianness and availability of the density option. */
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81 |
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82 | if (isa->num_modules == 0)
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83 | {
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84 | int found_memory_order = 0;
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85 |
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86 | isa->config = config_table;
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87 | isa->has_density = 1; /* Default to have density option. */
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88 |
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89 | for (i = 0; config_table[i].param_name; i++)
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90 | {
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91 | if (!strcmp (config_table[i].param_name, "IsaMemoryOrder"))
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92 | {
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93 | isa->is_big_endian =
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94 | (strcmp (config_table[i].param_value, "BigEndian") == 0);
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95 | found_memory_order = 1;
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96 | }
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97 | if (!strcmp (config_table[i].param_name, "IsaUseDensityInstruction"))
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98 | {
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99 | isa->has_density = atoi (config_table[i].param_value);
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100 | }
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101 | }
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102 | if (!found_memory_order)
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103 | {
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104 | fprintf (stderr, "Error: \"IsaMemoryOrder\" missing from "
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105 | "configuration table in ISA DLL\n");
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106 | return 0;
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107 | }
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108 |
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109 | return 1;
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110 | }
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111 |
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112 | /* For subsequent modules, check that the parameters match. Note: This
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113 | code is sufficient to handle the current model where there are never
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114 | more than 2 modules; we might at some point want to handle cases where
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115 | module N > 0 specifies some parameters not included in the base table,
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116 | and we would then add those to isa->config so that subsequent modules
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117 | would check against them. */
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118 |
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119 | for (i = 0; config_table[i].param_name; i++)
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120 | {
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121 | for (j = 0; isa->config[j].param_name; j++)
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122 | {
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123 | if (!strcmp (config_table[i].param_name, isa->config[j].param_name))
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124 | {
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125 | int mismatch;
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126 | if (!strcmp (config_table[i].param_name, "IsaCoprocessorCount"))
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127 | {
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128 | /* Only require the coprocessor count to be <= the base. */
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129 | int tiecnt = atoi (config_table[i].param_value);
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130 | int basecnt = atoi (isa->config[j].param_value);
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131 | mismatch = (tiecnt > basecnt);
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132 | }
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133 | else
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134 | mismatch = strcmp (config_table[i].param_value,
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135 | isa->config[j].param_value);
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136 | if (mismatch)
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137 | {
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138 | #define MISMATCH_MESSAGE \
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139 | "Error: Configuration mismatch in the \"%s\" parameter:\n\
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140 | the configuration used when the TIE file was compiled had a value of\n\
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141 | \"%s\", while the current configuration has a value of\n\
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142 | \"%s\". Please rerun the TIE compiler with a matching\n\
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143 | configuration.\n"
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144 | fprintf (stderr, MISMATCH_MESSAGE,
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145 | config_table[i].param_name,
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146 | config_table[i].param_value,
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147 | isa->config[j].param_value);
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148 | return 0;
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149 | }
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150 | break;
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151 | }
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152 | }
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153 | }
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154 |
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155 | return 1;
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156 | }
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157 |
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158 |
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159 | static int
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160 | xtensa_add_isa (xtensa_isa_internal *isa, libisa_module_specifier libisa)
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161 | {
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162 | int (*get_num_opcodes_fn) (void);
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163 | struct config_struct *(*get_config_table_fn) (void);
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164 | xtensa_opcode_internal **(*get_opcodes_fn) (void);
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165 | int (*decode_insn_fn) (const xtensa_insnbuf);
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166 | xtensa_opcode_internal **opcodes;
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167 | int opc, insn_size, prev_num_opcodes, new_num_opcodes, this_module;
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168 |
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169 | get_num_opcodes_fn = xtensa_isa_modules[libisa].get_num_opcodes_fn;
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170 | get_opcodes_fn = xtensa_isa_modules[libisa].get_opcodes_fn;
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171 | decode_insn_fn = xtensa_isa_modules[libisa].decode_insn_fn;
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172 | get_config_table_fn = xtensa_isa_modules[libisa].get_config_table_fn;
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173 |
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174 | if (!get_num_opcodes_fn || !get_opcodes_fn || !decode_insn_fn
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175 | || (!get_config_table_fn && isa->num_modules == 0))
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176 | return 0;
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177 |
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178 | if (get_config_table_fn
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179 | && !xtensa_check_isa_config (isa, get_config_table_fn ()))
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180 | return 0;
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181 |
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182 | prev_num_opcodes = isa->num_opcodes;
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183 | new_num_opcodes = (*get_num_opcodes_fn) ();
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184 |
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185 | isa->num_opcodes += new_num_opcodes;
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186 | isa->opcode_table = (xtensa_opcode_internal **)
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187 | realloc (isa->opcode_table, isa->num_opcodes *
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188 | sizeof (xtensa_opcode_internal *));
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189 | isa->opname_lookup_table = (opname_lookup_entry *)
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190 | realloc (isa->opname_lookup_table, isa->num_opcodes *
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191 | sizeof (opname_lookup_entry));
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192 |
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193 | opcodes = (*get_opcodes_fn) ();
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194 |
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195 | insn_size = isa->insn_size;
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196 | for (opc = 0; opc < new_num_opcodes; opc++)
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197 | {
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198 | xtensa_opcode_internal *intopc = opcodes[opc];
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199 | int newopc = prev_num_opcodes + opc;
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200 | isa->opcode_table[newopc] = intopc;
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201 | isa->opname_lookup_table[newopc].key = intopc->name;
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202 | isa->opname_lookup_table[newopc].opcode = newopc;
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203 | if (intopc->length > insn_size)
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204 | insn_size = intopc->length;
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205 | }
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206 |
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207 | isa->insn_size = insn_size;
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208 | isa->insnbuf_size = ((isa->insn_size + sizeof (xtensa_insnbuf_word) - 1) /
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209 | sizeof (xtensa_insnbuf_word));
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210 |
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211 | qsort (isa->opname_lookup_table, isa->num_opcodes,
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212 | sizeof (opname_lookup_entry), opname_lookup_compare);
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213 |
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214 | /* Check for duplicate opcode names. */
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215 | for (opc = 1; opc < isa->num_opcodes; opc++)
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216 | {
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217 | if (!opname_lookup_compare (&isa->opname_lookup_table[opc-1],
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218 | &isa->opname_lookup_table[opc]))
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219 | {
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220 | fprintf (stderr, "Error: Duplicate TIE opcode \"%s\"\n",
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221 | isa->opname_lookup_table[opc].key);
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222 | return 0;
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223 | }
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224 | }
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225 |
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226 | this_module = isa->num_modules;
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227 | isa->num_modules += 1;
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228 |
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229 | isa->module_opcode_base = (int *) realloc (isa->module_opcode_base,
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230 | isa->num_modules * sizeof (int));
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231 | isa->module_decode_fn = (xtensa_insn_decode_fn *)
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232 | realloc (isa->module_decode_fn, isa->num_modules *
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233 | sizeof (xtensa_insn_decode_fn));
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234 |
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235 | isa->module_opcode_base[this_module] = prev_num_opcodes;
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236 | isa->module_decode_fn[this_module] = decode_insn_fn;
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237 |
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238 | xtensa_default_isa = isa;
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239 |
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240 | return 1; /* Library was successfully added. */
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241 | }
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242 |
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243 |
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244 | xtensa_isa
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245 | xtensa_load_isa (libisa_module_specifier libisa)
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246 | {
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247 | xtensa_isa_internal *isa;
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248 |
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249 | isa = (xtensa_isa_internal *) malloc (sizeof (xtensa_isa_internal));
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250 | memset (isa, 0, sizeof (xtensa_isa_internal));
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251 | if (!xtensa_add_isa (isa, libisa))
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252 | {
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253 | xtensa_isa_free (isa);
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254 | return NULL;
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255 | }
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256 | return (xtensa_isa) isa;
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257 | }
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258 |
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259 |
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260 | int
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261 | xtensa_extend_isa (xtensa_isa isa, libisa_module_specifier libisa)
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262 | {
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263 | xtensa_isa_internal *intisa = (xtensa_isa_internal *) isa;
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264 | return xtensa_add_isa (intisa, libisa);
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265 | }
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266 |
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267 |
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268 | void
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269 | xtensa_isa_free (xtensa_isa isa)
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270 | {
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271 | xtensa_isa_internal *intisa = (xtensa_isa_internal *) isa;
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272 | if (intisa->opcode_table)
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273 | free (intisa->opcode_table);
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274 | if (intisa->opname_lookup_table)
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275 | free (intisa->opname_lookup_table);
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276 | if (intisa->module_opcode_base)
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277 | free (intisa->module_opcode_base);
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278 | if (intisa->module_decode_fn)
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279 | free (intisa->module_decode_fn);
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280 | free (intisa);
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281 | }
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282 |
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283 |
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284 | int
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285 | xtensa_insn_maxlength (xtensa_isa isa)
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286 | {
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287 | xtensa_isa_internal *intisa = (xtensa_isa_internal *) isa;
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288 | return intisa->insn_size;
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289 | }
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290 |
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291 |
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292 | int
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293 | xtensa_insnbuf_size (xtensa_isa isa)
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294 | {
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295 | xtensa_isa_internal *intisa = (xtensa_isa_internal *)isa;
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296 | return intisa->insnbuf_size;
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297 | }
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298 |
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299 |
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300 | int
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301 | xtensa_num_opcodes (xtensa_isa isa)
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302 | {
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303 | xtensa_isa_internal *intisa = (xtensa_isa_internal *) isa;
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304 | return intisa->num_opcodes;
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305 | }
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306 |
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307 |
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308 | xtensa_opcode
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309 | xtensa_opcode_lookup (xtensa_isa isa, const char *opname)
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310 | {
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311 | xtensa_isa_internal *intisa = (xtensa_isa_internal *) isa;
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312 | opname_lookup_entry entry, *result;
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313 |
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314 | entry.key = opname;
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315 | result = bsearch (&entry, intisa->opname_lookup_table, intisa->num_opcodes,
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316 | sizeof (opname_lookup_entry), opname_lookup_compare);
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317 | if (!result) return XTENSA_UNDEFINED;
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318 | return result->opcode;
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319 | }
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320 |
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321 |
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322 | xtensa_opcode
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323 | xtensa_decode_insn (xtensa_isa isa, const xtensa_insnbuf insn)
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324 | {
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325 | xtensa_isa_internal *intisa = (xtensa_isa_internal *) isa;
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326 | int n, opc;
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327 | for (n = 0; n < intisa->num_modules; n++) {
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328 | opc = (intisa->module_decode_fn[n]) (insn);
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329 | if (opc != XTENSA_UNDEFINED)
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330 | return intisa->module_opcode_base[n] + opc;
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331 | }
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332 | return XTENSA_UNDEFINED;
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333 | }
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334 |
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335 |
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336 | /* Opcode information. */
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337 |
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338 | void
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339 | xtensa_encode_insn (xtensa_isa isa, xtensa_opcode opc, xtensa_insnbuf insn)
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340 | {
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341 | xtensa_isa_internal *intisa = (xtensa_isa_internal *) isa;
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342 | xtensa_insnbuf template = intisa->opcode_table[opc]->template();
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343 | int len = intisa->opcode_table[opc]->length;
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344 | int n;
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345 |
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346 | /* Convert length to 32-bit words. */
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347 | len = (len + 3) / 4;
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348 |
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349 | /* Copy the template. */
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350 | for (n = 0; n < len; n++)
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351 | insn[n] = template[n];
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352 |
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353 | /* Fill any unused buffer space with zeros. */
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354 | for ( ; n < intisa->insnbuf_size; n++)
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355 | insn[n] = 0;
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356 | }
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357 |
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358 |
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359 | const char *
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360 | xtensa_opcode_name (xtensa_isa isa, xtensa_opcode opc)
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361 | {
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362 | xtensa_isa_internal *intisa = (xtensa_isa_internal *) isa;
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363 | return intisa->opcode_table[opc]->name;
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364 | }
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365 |
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366 |
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367 | int
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368 | xtensa_insn_length (xtensa_isa isa, xtensa_opcode opc)
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369 | {
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370 | xtensa_isa_internal *intisa = (xtensa_isa_internal *) isa;
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371 | return intisa->opcode_table[opc]->length;
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372 | }
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373 |
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374 |
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375 | int
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376 | xtensa_insn_length_from_first_byte (xtensa_isa isa, char first_byte)
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377 | {
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378 | xtensa_isa_internal *intisa = (xtensa_isa_internal *) isa;
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379 | int is_density = (first_byte & (intisa->is_big_endian ? 0x80 : 0x08)) != 0;
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380 | return (intisa->has_density && is_density ? 2 : 3);
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381 | }
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382 |
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383 |
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384 | int
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385 | xtensa_num_operands (xtensa_isa isa, xtensa_opcode opc)
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386 | {
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387 | xtensa_isa_internal *intisa = (xtensa_isa_internal *) isa;
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388 | return intisa->opcode_table[opc]->iclass->num_operands;
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389 | }
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390 |
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391 |
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392 | xtensa_operand
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393 | xtensa_get_operand (xtensa_isa isa, xtensa_opcode opc, int opnd)
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394 | {
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395 | xtensa_isa_internal *intisa = (xtensa_isa_internal *) isa;
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396 | xtensa_iclass_internal *iclass = intisa->opcode_table[opc]->iclass;
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397 | if (opnd >= iclass->num_operands)
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398 | return NULL;
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399 | return (xtensa_operand) iclass->operands[opnd];
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400 | }
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401 |
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402 |
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403 | /* Operand information. */
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404 |
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405 | char *
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406 | xtensa_operand_kind (xtensa_operand opnd)
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407 | {
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408 | xtensa_operand_internal *intop = (xtensa_operand_internal *) opnd;
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409 | return intop->operand_kind;
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410 | }
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411 |
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412 |
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413 | char
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414 | xtensa_operand_inout (xtensa_operand opnd)
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415 | {
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416 | xtensa_operand_internal *intop = (xtensa_operand_internal *) opnd;
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417 | return intop->inout;
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418 | }
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419 |
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420 |
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421 | uint32
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422 | xtensa_operand_get_field (xtensa_operand opnd, const xtensa_insnbuf insn)
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423 | {
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424 | xtensa_operand_internal *intop = (xtensa_operand_internal *) opnd;
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425 | return (*intop->get_field) (insn);
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426 | }
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427 |
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428 |
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429 | void
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430 | xtensa_operand_set_field (xtensa_operand opnd, xtensa_insnbuf insn, uint32 val)
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431 | {
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432 | xtensa_operand_internal *intop = (xtensa_operand_internal *) opnd;
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433 | return (*intop->set_field) (insn, val);
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434 | }
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435 |
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436 |
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437 | xtensa_encode_result
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438 | xtensa_operand_encode (xtensa_operand opnd, uint32 *valp)
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439 | {
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---|
440 | xtensa_operand_internal *intop = (xtensa_operand_internal *) opnd;
|
---|
441 | return (*intop->encode) (valp);
|
---|
442 | }
|
---|
443 |
|
---|
444 |
|
---|
445 | uint32
|
---|
446 | xtensa_operand_decode (xtensa_operand opnd, uint32 val)
|
---|
447 | {
|
---|
448 | xtensa_operand_internal *intop = (xtensa_operand_internal *) opnd;
|
---|
449 | return (*intop->decode) (val);
|
---|
450 | }
|
---|
451 |
|
---|
452 |
|
---|
453 | int
|
---|
454 | xtensa_operand_isPCRelative (xtensa_operand opnd)
|
---|
455 | {
|
---|
456 | xtensa_operand_internal *intop = (xtensa_operand_internal *) opnd;
|
---|
457 | return intop->isPCRelative;
|
---|
458 | }
|
---|
459 |
|
---|
460 |
|
---|
461 | uint32
|
---|
462 | xtensa_operand_do_reloc (xtensa_operand opnd, uint32 addr, uint32 pc)
|
---|
463 | {
|
---|
464 | xtensa_operand_internal *intop = (xtensa_operand_internal *) opnd;
|
---|
465 | if (!intop->isPCRelative)
|
---|
466 | return addr;
|
---|
467 | return (*intop->do_reloc) (addr, pc);
|
---|
468 | }
|
---|
469 |
|
---|
470 |
|
---|
471 | uint32
|
---|
472 | xtensa_operand_undo_reloc (xtensa_operand opnd, uint32 offset, uint32 pc)
|
---|
473 | {
|
---|
474 | xtensa_operand_internal *intop = (xtensa_operand_internal *) opnd;
|
---|
475 | if (!intop->isPCRelative)
|
---|
476 | return offset;
|
---|
477 | return (*intop->undo_reloc) (offset, pc);
|
---|
478 | }
|
---|
479 |
|
---|
480 |
|
---|
481 | /* Instruction buffers. */
|
---|
482 |
|
---|
483 | xtensa_insnbuf
|
---|
484 | xtensa_insnbuf_alloc (xtensa_isa isa)
|
---|
485 | {
|
---|
486 | return (xtensa_insnbuf) malloc (xtensa_insnbuf_size (isa) *
|
---|
487 | sizeof (xtensa_insnbuf_word));
|
---|
488 | }
|
---|
489 |
|
---|
490 |
|
---|
491 | void
|
---|
492 | xtensa_insnbuf_free (xtensa_insnbuf buf)
|
---|
493 | {
|
---|
494 | free( buf );
|
---|
495 | }
|
---|
496 |
|
---|
497 |
|
---|
498 | /* Given <byte_index>, the index of a byte in a xtensa_insnbuf, our
|
---|
499 | internal representation of a xtensa instruction word, return the index of
|
---|
500 | its word and the bit index of its low order byte in the xtensa_insnbuf. */
|
---|
501 |
|
---|
502 | static inline int
|
---|
503 | byte_to_word_index (int byte_index)
|
---|
504 | {
|
---|
505 | return byte_index / sizeof (xtensa_insnbuf_word);
|
---|
506 | }
|
---|
507 |
|
---|
508 |
|
---|
509 | static inline int
|
---|
510 | byte_to_bit_index (int byte_index)
|
---|
511 | {
|
---|
512 | return (byte_index & 0x3) * 8;
|
---|
513 | }
|
---|
514 |
|
---|
515 |
|
---|
516 | /* Copy an instruction in the 32 bit words pointed at by <insn> to characters
|
---|
517 | pointed at by <cp>. This is more complicated than you might think because
|
---|
518 | we want 16 bit instructions in bytes 2,3 for big endian. This function
|
---|
519 | allows us to specify which byte in <insn> to start with and which way to
|
---|
520 | increment, allowing trivial implementation for both big and little endian.
|
---|
521 | And it seems to make pretty good code for both. */
|
---|
522 |
|
---|
523 | void
|
---|
524 | xtensa_insnbuf_to_chars (xtensa_isa isa, const xtensa_insnbuf insn, char *cp)
|
---|
525 | {
|
---|
526 | xtensa_isa_internal *intisa = (xtensa_isa_internal *) isa;
|
---|
527 | int insn_size = xtensa_insn_maxlength (intisa);
|
---|
528 | int fence_post, start, increment, i, byte_count;
|
---|
529 | xtensa_opcode opc;
|
---|
530 |
|
---|
531 | if (intisa->is_big_endian)
|
---|
532 | {
|
---|
533 | start = insn_size - 1;
|
---|
534 | increment = -1;
|
---|
535 | }
|
---|
536 | else
|
---|
537 | {
|
---|
538 | start = 0;
|
---|
539 | increment = 1;
|
---|
540 | }
|
---|
541 |
|
---|
542 | /* Find the opcode; do nothing if the buffer does not contain a valid
|
---|
543 | instruction since we need to know how many bytes to copy. */
|
---|
544 | opc = xtensa_decode_insn (isa, insn);
|
---|
545 | if (opc == XTENSA_UNDEFINED)
|
---|
546 | return;
|
---|
547 |
|
---|
548 | byte_count = xtensa_insn_length (isa, opc);
|
---|
549 | fence_post = start + (byte_count * increment);
|
---|
550 |
|
---|
551 | for (i = start; i != fence_post; i += increment, ++cp)
|
---|
552 | {
|
---|
553 | int word_inx = byte_to_word_index (i);
|
---|
554 | int bit_inx = byte_to_bit_index (i);
|
---|
555 |
|
---|
556 | *cp = (insn[word_inx] >> bit_inx) & 0xff;
|
---|
557 | }
|
---|
558 | }
|
---|
559 |
|
---|
560 | /* Inward conversion from byte stream to xtensa_insnbuf. See
|
---|
561 | xtensa_insnbuf_to_chars for a discussion of why this is
|
---|
562 | complicated by endianness. */
|
---|
563 |
|
---|
564 | void
|
---|
565 | xtensa_insnbuf_from_chars (xtensa_isa isa, xtensa_insnbuf insn, const char* cp)
|
---|
566 | {
|
---|
567 | xtensa_isa_internal *intisa = (xtensa_isa_internal *) isa;
|
---|
568 | int insn_size = xtensa_insn_maxlength (intisa);
|
---|
569 | int fence_post, start, increment, i;
|
---|
570 |
|
---|
571 | if (intisa->is_big_endian)
|
---|
572 | {
|
---|
573 | start = insn_size - 1;
|
---|
574 | increment = -1;
|
---|
575 | }
|
---|
576 | else
|
---|
577 | {
|
---|
578 | start = 0;
|
---|
579 | increment = 1;
|
---|
580 | }
|
---|
581 |
|
---|
582 | fence_post = start + (insn_size * increment);
|
---|
583 | memset (insn, 0, xtensa_insnbuf_size (isa) * sizeof (xtensa_insnbuf_word));
|
---|
584 |
|
---|
585 | for ( i = start; i != fence_post; i += increment, ++cp )
|
---|
586 | {
|
---|
587 | int word_inx = byte_to_word_index (i);
|
---|
588 | int bit_inx = byte_to_bit_index (i);
|
---|
589 |
|
---|
590 | insn[word_inx] |= (*cp & 0xff) << bit_inx;
|
---|
591 | }
|
---|
592 | }
|
---|
593 |
|
---|