Mercurial > hg > index.cgi
annotate lwasm/insn_rel.c @ 349:b62af915c2cc
Fix includebin to use binary mode when emitting the contents of the file.
For systems with the stupid distinction between binary and text files (I'm
looking at you Windows), actually specify binary mode when reading the
include file for a binary include.
It worked fine on Linux and other Unix-like systems which treat files as
a simple sequence of bytes but on Windows, you get the benefit of 0x1A
causing an EOF signal with text mode files which is not helpful.
author | William Astle <lost@l-w.ca> |
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date | Sun, 12 Apr 2015 12:11:19 -0600 |
parents | d0e9dbe9afbe |
children | 8764142b3192 |
rev | line source |
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1 /* |
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2 insn_rel.c |
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3 Copyright © 2009 William Astle |
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4 |
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5 This file is part of LWASM. |
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6 |
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7 LWASM is free software: you can redistribute it and/or modify it under the |
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8 terms of the GNU General Public License as published by the Free Software |
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9 Foundation, either version 3 of the License, or (at your option) any later |
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10 version. |
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11 |
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12 This program is distributed in the hope that it will be useful, but WITHOUT |
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13 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or |
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14 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for |
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15 more details. |
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16 |
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17 You should have received a copy of the GNU General Public License along with |
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18 this program. If not, see <http://www.gnu.org/licenses/>. |
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19 */ |
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20 |
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21 /* |
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22 for handling relative mode instructions |
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23 */ |
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24 |
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25 #include <ctype.h> |
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26 #include <stdlib.h> |
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27 #include <stdio.h> |
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28 |
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29 #include <lw_expr.h> |
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30 |
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31 #include "lwasm.h" |
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32 #include "instab.h" |
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33 |
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34 /* |
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35 For generic relative, the first "opcode" is the natural opcode for the |
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36 mneumonic. The second "opcode" is the natural size of the relative offset. |
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37 These will be used when pragma autobranchlength is NOT in effect. |
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38 |
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39 The third "opcode" is the short (8 bit) version of the branch. The final one |
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40 is the long (16 bit) version of the branch. These will be used when pragma |
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41 autobranchlength is in effect. |
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42 |
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43 When autobranchlength is in effect, the branch target can be prefixed with |
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44 either < or > to force a short or long branch. Note that in this mode, |
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45 a > or < on its own still specifies a branch point. |
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46 |
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47 */ |
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48 PARSEFUNC(insn_parse_relgen) |
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49 { |
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50 lw_expr_t t, e1, e2; |
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51 |
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52 l -> lint = -1; |
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53 l -> maxlen = OPLEN(instab[l -> insn].ops[3]) + 2; |
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54 l -> minlen = OPLEN(instab[l -> insn].ops[2]) + 1; |
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55 if (CURPRAGMA(l, PRAGMA_AUTOBRANCHLENGTH) == 0) |
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56 { |
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57 l -> lint = instab[l -> insn].ops[1]; |
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58 } |
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59 else |
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60 { |
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61 if (**p == '>' && (((*p)[1]) && !isspace((*p)[1]))) |
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62 { |
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63 (*p)++; |
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64 l -> lint = 16; |
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65 } |
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66 else if (**p == '<' && (((*p)[1]) && !isspace((*p)[1]))) |
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67 { |
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68 (*p)++; |
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69 l -> lint = 8; |
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70 } |
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71 } |
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72 |
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73 /* forced sizes handled */ |
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74 |
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75 // sometimes there is a "#", ignore if there |
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76 if (**p == '#') |
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77 (*p)++; |
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78 |
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79 t = lwasm_parse_expr(as, p); |
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80 |
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81 if (!t) |
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82 { |
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83 lwasm_register_error(as, l, "Bad operand"); |
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84 return; |
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85 } |
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86 |
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87 // if we know the length of the instruction, set it now |
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88 if (l -> lint == 8) |
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89 { |
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90 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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91 } |
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92 else if (l -> lint == 16) |
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93 { |
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94 l -> len = OPLEN(instab[l -> insn].ops[3]) + 2; |
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95 } |
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96 |
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97 // the offset calculation here depends on the length of this line! |
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98 // how to calculate requirements? |
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99 // this is the same problem faced by ,pcr indexing |
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100 e2 = lw_expr_build(lw_expr_type_special, lwasm_expr_linelen, l); |
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101 e1 = lw_expr_build(lw_expr_type_oper, lw_expr_oper_minus, t, e2); |
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102 lw_expr_destroy(e2); |
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103 e2 = lw_expr_build(lw_expr_type_oper, lw_expr_oper_minus, e1, l -> addr); |
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104 lw_expr_destroy(e1); |
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105 lwasm_save_expr(l, 0, e2); |
89 | 106 lw_expr_destroy(t); |
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107 |
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108 if (l -> len == -1) |
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109 { |
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110 e1 = lw_expr_copy(e2); |
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111 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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112 lwasm_reduce_expr(as, e1); |
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113 l -> len = -1; |
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114 if (lw_expr_istype(e1, lw_expr_type_int)) |
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115 { |
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116 int v; |
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117 v = lw_expr_intval(e1); |
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118 if (v >= -128 && v <= 127) |
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119 { |
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120 l -> lint = 8; |
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121 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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122 } |
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123 else |
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124 { |
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125 l -> lint = 16; |
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126 l -> len = OPLEN(instab[l -> insn].ops[3]) + 2; |
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127 } |
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128 } |
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129 lw_expr_destroy(e1); |
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130 } |
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131 } |
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132 |
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133 RESOLVEFUNC(insn_resolve_relgen) |
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134 { |
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135 lw_expr_t e, e2; |
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136 int offs; |
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137 |
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138 if (l -> lint == -1) |
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139 { |
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140 e = lwasm_fetch_expr(l, 0); |
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141 if (!lw_expr_istype(e, lw_expr_type_int)) |
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142 { |
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143 // temporarily set the instruction length to see if we get a |
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144 // constant for our expression; if so, we can select an instruction |
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145 // size |
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146 e2 = lw_expr_copy(e); |
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147 // size of 8-bit opcode + 8 bit offset |
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148 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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149 lwasm_reduce_expr(as, e2); |
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150 l -> len = -1; |
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151 if (lw_expr_istype(e2, lw_expr_type_int)) |
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152 { |
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153 // it reduced to an integer; is it in 8 bit range? |
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154 offs = lw_expr_intval(e2); |
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155 if (offs >= -128 && offs <= 127) |
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156 { |
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157 // fits in 8 bits |
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158 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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159 l -> lint = 8; |
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160 } |
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161 else |
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162 { |
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163 // requires 16 bits |
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164 l -> len = OPLEN(instab[l -> insn].ops[3]) + 2; |
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165 l -> lint = 16; |
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166 } |
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167 } |
211
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168 // size of 8-bit opcode + 8 bit offset |
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169 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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170 as -> pretendmax = 1; |
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171 lwasm_reduce_expr(as, e2); |
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172 as -> pretendmax = 0; |
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173 l -> len = -1; |
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174 if (lw_expr_istype(e2, lw_expr_type_int)) |
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175 { |
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176 // it reduced to an integer; is it in 8 bit range? |
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177 offs = lw_expr_intval(e2); |
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178 if (offs >= -128 && offs <= 127) |
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179 { |
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180 // fits in 8 bits with a worst case scenario |
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181 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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182 l -> lint = 8; |
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183 } |
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184 } |
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185 lw_expr_destroy(e2); |
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186 } |
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187 if (lw_expr_istype(e, lw_expr_type_int)) |
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188 { |
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189 // it reduced to an integer; is it in 8 bit range? |
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190 offs = lw_expr_intval(e); |
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191 if (offs >= -128 && offs <= 127) |
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192 { |
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193 // fits in 8 bits |
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194 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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195 l -> lint = 8; |
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196 } |
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197 else |
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198 { |
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199 // requires 16 bits |
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200 l -> len = OPLEN(instab[l -> insn].ops[3]) + 2; |
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201 l -> lint = 16; |
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202 } |
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203 } |
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204 } |
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205 if (!force) |
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206 return; |
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207 |
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208 if (l -> len == -1) |
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209 { |
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210 l -> len = OPLEN(instab[l -> insn].ops[3]) + 2; |
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211 l -> lint = 16; |
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212 } |
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213 } |
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214 |
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215 EMITFUNC(insn_emit_relgen) |
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216 { |
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217 lw_expr_t e; |
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218 int offs; |
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219 |
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220 e = lwasm_fetch_expr(l, 0); |
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221 if (l -> lint == 8) |
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222 { |
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223 if (!lw_expr_istype(e, lw_expr_type_int)) |
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224 { |
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225 lwasm_register_error(as, l, "Illegal non-constant expression"); |
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226 return; |
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227 } |
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228 |
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229 offs = lw_expr_intval(e); |
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230 if (l -> lint == 8 && (offs < -128 || offs > 127)) |
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231 { |
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232 lwasm_register_error(as, l, "Byte overflow"); |
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233 return; |
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234 } |
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235 |
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236 |
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237 lwasm_emitop(l, instab[l -> insn].ops[2]); |
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238 lwasm_emit(l, offs); |
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239 } |
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240 else |
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241 { |
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242 lwasm_emitop(l, instab[l -> insn].ops[3]); |
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243 lwasm_emitexpr(l, e, 2); |
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244 } |
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245 } |