Mercurial > hg > index.cgi
annotate lwasm/insn_rel.c @ 415:8222f30a0781
Commit the *correct* note about the gcc6809 code generation bug.
author | William Astle <lost@l-w.ca> |
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date | Thu, 24 Mar 2016 19:25:14 -0600 |
parents | 0af33282b518 |
children | cad5937314cb |
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 #include <string.h> |
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29 |
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30 #include <lw_expr.h> |
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31 |
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32 #include "lwasm.h" |
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33 #include "instab.h" |
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34 |
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35 /* |
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36 For generic relative, the first "opcode" is the natural opcode for the |
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37 mneumonic. The second "opcode" is the natural size of the relative offset. |
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38 These will be used when pragma autobranchlength is NOT in effect. |
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39 |
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40 The third "opcode" is the short (8 bit) version of the branch. The final one |
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41 is the long (16 bit) version of the branch. These will be used when pragma |
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42 autobranchlength is in effect. |
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43 |
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44 When autobranchlength is in effect, the branch target can be prefixed with |
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45 either < or > to force a short or long branch. Note that in this mode, |
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46 a > or < on its own still specifies a branch point. |
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47 |
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48 */ |
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49 PARSEFUNC(insn_parse_relgen) |
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50 { |
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51 lw_expr_t t = NULL, e1, e2; |
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52 |
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53 l -> lint = -1; |
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54 l -> maxlen = OPLEN(instab[l -> insn].ops[3]) + 2; |
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55 l -> minlen = OPLEN(instab[l -> insn].ops[2]) + 1; |
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56 if (CURPRAGMA(l, PRAGMA_AUTOBRANCHLENGTH) == 0) |
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57 { |
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58 l -> lint = instab[l -> insn].ops[1]; |
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59 } |
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60 else |
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61 { |
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62 if (**p == '>' && (((*p)[1]) && !isspace((*p)[1]))) |
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63 { |
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64 (*p)++; |
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65 l -> lint = 16; |
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66 } |
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67 else if (**p == '<' && (((*p)[1]) && !isspace((*p)[1]))) |
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68 { |
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69 (*p)++; |
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70 l -> lint = 8; |
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71 } |
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72 } |
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73 |
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74 /* forced sizes handled */ |
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75 |
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76 // sometimes there is a "#", ignore if there |
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77 if (**p == '#') |
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78 (*p)++; |
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79 |
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80 if (CURPRAGMA(l, PRAGMA_QRTS)) |
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81 { |
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82 // handle ?RTS conditional return |
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83 if (**p == '?') |
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84 { |
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85 if (strncasecmp(*p, "?RTS", 4) == 0) |
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86 { |
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87 (*p) += 4; |
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88 |
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89 line_t *cl = l; |
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90 for (cl = cl->prev; cl; cl = cl->prev) |
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91 { |
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92 if (cl->insn == -1) |
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93 continue; |
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94 |
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95 if (l->addr->value - cl->addr->value > 128) |
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96 { |
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97 cl = NULL; |
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98 break; |
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99 } |
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100 |
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101 if (cl->conditional_return) |
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102 break; |
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103 |
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104 if (instab[cl->insn].ops[0] == 0x39) |
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105 break; |
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106 } |
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107 |
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108 if (cl) |
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109 { |
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110 l->lint = -1; |
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111 if (cl->conditional_return) |
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112 { |
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113 e2 = lw_expr_build(lw_expr_type_special, lwasm_expr_lineaddr, cl); |
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114 e1 = lw_expr_build(lw_expr_type_int, 2); |
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115 t = lw_expr_build(lw_expr_type_oper, lw_expr_oper_plus, e1, e2); |
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116 } |
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117 else |
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118 { |
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119 t = lw_expr_build(lw_expr_type_special, lwasm_expr_lineaddr, cl); |
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120 } |
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121 } |
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122 else |
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123 { |
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124 l->conditional_return = 1; |
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125 |
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126 // t = * + 1 |
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127 |
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128 e2 = lw_expr_build(lw_expr_type_special, lwasm_expr_lineaddr, l); |
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129 e1 = lw_expr_build(lw_expr_type_int, 1); |
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130 t = lw_expr_build(lw_expr_type_oper, lw_expr_oper_plus, e1, e2); |
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131 |
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132 lw_expr_destroy(e1); |
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133 lw_expr_destroy(e2); |
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134 } |
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135 } |
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136 } |
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137 } |
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138 |
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139 if (!t) |
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140 { |
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141 t = lwasm_parse_expr(as, p); |
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142 } |
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143 |
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144 if (!t) |
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145 { |
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146 lwasm_register_error(as, l, E_OPERAND_BAD); |
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147 return; |
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148 } |
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149 |
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150 // if we know the length of the instruction, set it now |
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151 if (l -> lint == 8) |
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152 { |
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153 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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154 if (l->conditional_return) l->len++; |
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155 } |
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156 else if (l -> lint == 16) |
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157 { |
122
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158 l -> len = OPLEN(instab[l -> insn].ops[3]) + 2; |
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159 } |
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160 |
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161 // the offset calculation here depends on the length of this line! |
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162 // how to calculate requirements? |
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163 // this is the same problem faced by ,pcr indexing |
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164 e2 = lw_expr_build(lw_expr_type_special, lwasm_expr_linelen, l); |
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165 e1 = lw_expr_build(lw_expr_type_oper, lw_expr_oper_minus, t, e2); |
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166 lw_expr_destroy(e2); |
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167 e2 = lw_expr_build(lw_expr_type_oper, lw_expr_oper_minus, e1, l -> addr); |
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168 lw_expr_destroy(e1); |
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169 lwasm_save_expr(l, 0, e2); |
89 | 170 lw_expr_destroy(t); |
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171 |
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172 if (l -> len == -1) |
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173 { |
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174 e1 = lw_expr_copy(e2); |
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175 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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176 lwasm_reduce_expr(as, e1); |
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177 l -> len = -1; |
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178 if (lw_expr_istype(e1, lw_expr_type_int)) |
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179 { |
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180 int v; |
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181 v = lw_expr_intval(e1); |
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182 if (v >= -128 && v <= 127) |
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183 { |
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184 l -> lint = 8; |
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185 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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186 } |
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187 else |
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188 { |
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189 l -> lint = 16; |
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190 l -> len = OPLEN(instab[l -> insn].ops[3]) + 2; |
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191 } |
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192 } |
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193 lw_expr_destroy(e1); |
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194 } |
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195 } |
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196 |
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197 RESOLVEFUNC(insn_resolve_relgen) |
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198 { |
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199 lw_expr_t e, e2; |
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200 int offs; |
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201 |
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202 if (l -> lint == -1) |
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203 { |
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204 e = lwasm_fetch_expr(l, 0); |
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205 if (!lw_expr_istype(e, lw_expr_type_int)) |
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206 { |
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207 // temporarily set the instruction length to see if we get a |
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208 // constant for our expression; if so, we can select an instruction |
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209 // size |
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210 e2 = lw_expr_copy(e); |
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211 // size of 8-bit opcode + 8 bit offset |
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212 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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213 lwasm_reduce_expr(as, e2); |
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214 l -> len = -1; |
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215 if (lw_expr_istype(e2, lw_expr_type_int)) |
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216 { |
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217 // it reduced to an integer; is it in 8 bit range? |
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218 offs = lw_expr_intval(e2); |
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219 if (offs >= -128 && offs <= 127) |
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220 { |
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221 // fits in 8 bits |
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222 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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223 l -> lint = 8; |
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224 } |
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225 else |
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226 { |
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227 // requires 16 bits |
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228 l -> len = OPLEN(instab[l -> insn].ops[3]) + 2; |
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229 l -> lint = 16; |
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230 } |
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231 } |
211
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232 // size of 8-bit opcode + 8 bit offset |
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233 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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234 as -> pretendmax = 1; |
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235 lwasm_reduce_expr(as, e2); |
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236 as -> pretendmax = 0; |
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237 l -> len = -1; |
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238 if (lw_expr_istype(e2, lw_expr_type_int)) |
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239 { |
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240 // it reduced to an integer; is it in 8 bit range? |
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241 offs = lw_expr_intval(e2); |
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242 if (offs >= -128 && offs <= 127) |
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243 { |
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244 // fits in 8 bits with a worst case scenario |
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245 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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246 l -> lint = 8; |
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247 } |
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248 } |
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249 lw_expr_destroy(e2); |
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250 } |
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251 if (lw_expr_istype(e, lw_expr_type_int)) |
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252 { |
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253 // it reduced to an integer; is it in 8 bit range? |
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254 offs = lw_expr_intval(e); |
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255 if (offs >= -128 && offs <= 127) |
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256 { |
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257 // fits in 8 bits |
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258 l -> len = OPLEN(instab[l -> insn].ops[2]) + 1; |
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259 l -> lint = 8; |
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260 } |
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261 else |
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262 { |
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263 // requires 16 bits |
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264 l -> len = OPLEN(instab[l -> insn].ops[3]) + 2; |
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265 l -> lint = 16; |
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266 } |
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267 } |
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268 } |
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269 if (!force) |
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270 return; |
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271 |
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272 if (l -> len == -1) |
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273 { |
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274 l -> len = OPLEN(instab[l -> insn].ops[3]) + 2; |
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275 l -> lint = 16; |
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276 } |
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277 } |
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278 |
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279 EMITFUNC(insn_emit_relgen) |
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280 { |
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281 lw_expr_t e; |
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282 int offs; |
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283 |
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284 e = lwasm_fetch_expr(l, 0); |
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285 if (l -> lint == 8) |
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286 { |
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287 if (!lw_expr_istype(e, lw_expr_type_int)) |
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288 { |
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289 lwasm_register_error(as, l, E_EXPRESSION_NOT_CONST); |
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290 return; |
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291 } |
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292 |
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293 offs = lw_expr_intval(e); |
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294 if (l -> lint == 8 && (offs < -128 || offs > 127)) |
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295 { |
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296 lwasm_register_error(as, l, E_BYTE_OVERFLOW); |
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297 return; |
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298 } |
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299 |
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300 if (l->conditional_return) |
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301 { |
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302 lwasm_emitop(l, instab[l->insn].ops[2] ^ 1); /* flip branch, add RTS */ |
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303 lwasm_emit(l, 1); |
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304 lwasm_emit(l, 0x39); |
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305 l->cycle_adj = 3; |
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306 } |
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307 else |
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308 { |
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309 lwasm_emitop(l, instab[l->insn].ops[2]); |
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310 lwasm_emit(l, offs); |
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311 } |
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312 } |
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313 else |
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314 { |
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315 lwasm_emitop(l, instab[l -> insn].ops[3]); |
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316 lwasm_emitexpr(l, e, 2); |
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318 } |
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319 } |