1 | /*
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2 | * Copyright (C) 2008 Apple Inc. All rights reserved.
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3 | *
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4 | * Redistribution and use in source and binary forms, with or without
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5 | * modification, are permitted provided that the following conditions
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6 | * are met:
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7 | * 1. Redistributions of source code must retain the above copyright
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8 | * notice, this list of conditions and the following disclaimer.
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9 | * 2. Redistributions in binary form must reproduce the above copyright
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10 | * notice, this list of conditions and the following disclaimer in the
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11 | * documentation and/or other materials provided with the distribution.
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12 | *
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13 | * THIS SOFTWARE IS PROVIDED BY APPLE INC. ``AS IS'' AND ANY
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14 | * EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
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15 | * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
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16 | * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL APPLE INC. OR
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17 | * CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL,
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18 | * EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
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19 | * PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR
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20 | * PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY
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21 | * OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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22 | * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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23 | * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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24 | */
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25 |
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26 | #ifndef AbstractMacroAssembler_h
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27 | #define AbstractMacroAssembler_h
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28 |
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29 | #include <wtf/Platform.h>
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30 |
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31 | #include <MacroAssemblerCodeRef.h>
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32 | #include <CodeLocation.h>
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33 | #include <wtf/Noncopyable.h>
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34 | #include <wtf/UnusedParam.h>
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35 |
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36 | #if ENABLE(ASSEMBLER)
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37 |
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38 | namespace JSC {
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39 |
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40 | class LinkBuffer;
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41 | class RepatchBuffer;
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42 |
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43 | template <class AssemblerType>
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44 | class AbstractMacroAssembler {
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45 | public:
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46 | typedef AssemblerType AssemblerType_T;
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47 |
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48 | typedef MacroAssemblerCodePtr CodePtr;
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49 | typedef MacroAssemblerCodeRef CodeRef;
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50 |
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51 | class Jump;
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52 |
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53 | typedef typename AssemblerType::RegisterID RegisterID;
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54 | typedef typename AssemblerType::FPRegisterID FPRegisterID;
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55 | typedef typename AssemblerType::JmpSrc JmpSrc;
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56 | typedef typename AssemblerType::JmpDst JmpDst;
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57 |
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58 |
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59 | // Section 1: MacroAssembler operand types
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60 | //
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61 | // The following types are used as operands to MacroAssembler operations,
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62 | // describing immediate and memory operands to the instructions to be planted.
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63 |
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64 |
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65 | enum Scale {
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66 | TimesOne,
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67 | TimesTwo,
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68 | TimesFour,
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69 | TimesEight,
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70 | };
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71 |
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72 | // Address:
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73 | //
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74 | // Describes a simple base-offset address.
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75 | struct Address {
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76 | explicit Address(RegisterID base, int32_t offset = 0)
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77 | : base(base)
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78 | , offset(offset)
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79 | {
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80 | }
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81 |
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82 | RegisterID base;
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83 | int32_t offset;
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84 | };
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85 |
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86 | // ImplicitAddress:
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87 | //
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88 | // This class is used for explicit 'load' and 'store' operations
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89 | // (as opposed to situations in which a memory operand is provided
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90 | // to a generic operation, such as an integer arithmetic instruction).
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91 | //
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92 | // In the case of a load (or store) operation we want to permit
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93 | // addresses to be implicitly constructed, e.g. the two calls:
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94 | //
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95 | // load32(Address(addrReg), destReg);
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96 | // load32(addrReg, destReg);
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97 | //
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98 | // Are equivalent, and the explicit wrapping of the Address in the former
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99 | // is unnecessary.
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100 | struct ImplicitAddress {
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101 | ImplicitAddress(RegisterID base)
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102 | : base(base)
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103 | , offset(0)
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104 | {
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105 | }
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106 |
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107 | ImplicitAddress(Address address)
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108 | : base(address.base)
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109 | , offset(address.offset)
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110 | {
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111 | }
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112 |
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113 | RegisterID base;
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114 | int32_t offset;
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115 | };
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116 |
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117 | // BaseIndex:
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118 | //
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119 | // Describes a complex addressing mode.
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120 | struct BaseIndex {
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121 | BaseIndex(RegisterID base, RegisterID index, Scale scale, int32_t offset = 0)
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122 | : base(base)
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123 | , index(index)
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124 | , scale(scale)
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125 | , offset(offset)
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126 | {
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127 | }
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128 |
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129 | RegisterID base;
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130 | RegisterID index;
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131 | Scale scale;
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132 | int32_t offset;
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133 | };
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134 |
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135 | // AbsoluteAddress:
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136 | //
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137 | // Describes an memory operand given by a pointer. For regular load & store
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138 | // operations an unwrapped void* will be used, rather than using this.
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139 | struct AbsoluteAddress {
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140 | explicit AbsoluteAddress(void* ptr)
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141 | : m_ptr(ptr)
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142 | {
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143 | }
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144 |
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145 | void* m_ptr;
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146 | };
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147 |
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148 | // ImmPtr:
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149 | //
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150 | // A pointer sized immediate operand to an instruction - this is wrapped
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151 | // in a class requiring explicit construction in order to differentiate
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152 | // from pointers used as absolute addresses to memory operations
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153 | struct ImmPtr {
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154 | explicit ImmPtr(void* value)
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155 | : m_value(value)
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156 | {
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157 | }
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158 |
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159 | intptr_t asIntptr()
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160 | {
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161 | return reinterpret_cast<intptr_t>(m_value);
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162 | }
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163 |
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164 | void* m_value;
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165 | };
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166 |
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167 | // Imm32:
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168 | //
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169 | // A 32bit immediate operand to an instruction - this is wrapped in a
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170 | // class requiring explicit construction in order to prevent RegisterIDs
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171 | // (which are implemented as an enum) from accidentally being passed as
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172 | // immediate values.
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173 | struct Imm32 {
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174 | explicit Imm32(int32_t value)
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175 | : m_value(value)
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176 | #if PLATFORM(ARM)
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177 | , m_isPointer(false)
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178 | #endif
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179 | {
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180 | }
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181 |
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182 | #if !PLATFORM(X86_64)
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183 | explicit Imm32(ImmPtr ptr)
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184 | : m_value(ptr.asIntptr())
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185 | #if PLATFORM(ARM)
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186 | , m_isPointer(true)
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187 | #endif
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188 | {
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189 | }
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190 | #endif
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191 |
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192 | int32_t m_value;
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193 | #if PLATFORM(ARM)
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194 | // We rely on being able to regenerate code to recover exception handling
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195 | // information. Since ARMv7 supports 16-bit immediates there is a danger
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196 | // that if pointer values change the layout of the generated code will change.
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197 | // To avoid this problem, always generate pointers (and thus Imm32s constructed
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198 | // from ImmPtrs) with a code sequence that is able to represent any pointer
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199 | // value - don't use a more compact form in these cases.
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200 | bool m_isPointer;
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201 | #endif
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202 | };
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203 |
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204 |
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205 | // Section 2: MacroAssembler code buffer handles
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206 | //
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207 | // The following types are used to reference items in the code buffer
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208 | // during JIT code generation. For example, the type Jump is used to
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209 | // track the location of a jump instruction so that it may later be
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210 | // linked to a label marking its destination.
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211 |
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212 |
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213 | // Label:
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214 | //
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215 | // A Label records a point in the generated instruction stream, typically such that
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216 | // it may be used as a destination for a jump.
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217 | class Label {
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218 | template<class TemplateAssemblerType>
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219 | friend class AbstractMacroAssembler;
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220 | friend class Jump;
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221 | friend class MacroAssemblerCodeRef;
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222 | friend class LinkBuffer;
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223 |
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224 | public:
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225 | Label()
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226 | {
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227 | }
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228 |
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229 | Label(AbstractMacroAssembler<AssemblerType>* masm)
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230 | : m_label(masm->m_assembler.label())
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231 | {
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232 | }
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233 |
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234 | bool isUsed() const { return m_label.isUsed(); }
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235 | void used() { m_label.used(); }
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236 | private:
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237 | JmpDst m_label;
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238 | };
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239 |
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240 | // DataLabelPtr:
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241 | //
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242 | // A DataLabelPtr is used to refer to a location in the code containing a pointer to be
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243 | // patched after the code has been generated.
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244 | class DataLabelPtr {
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245 | template<class TemplateAssemblerType>
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246 | friend class AbstractMacroAssembler;
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247 | friend class LinkBuffer;
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248 | public:
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249 | DataLabelPtr()
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250 | {
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251 | }
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252 |
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253 | DataLabelPtr(AbstractMacroAssembler<AssemblerType>* masm)
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254 | : m_label(masm->m_assembler.label())
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255 | {
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256 | }
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257 |
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258 | private:
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259 | JmpDst m_label;
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260 | };
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261 |
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262 | // DataLabel32:
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263 | //
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264 | // A DataLabelPtr is used to refer to a location in the code containing a pointer to be
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265 | // patched after the code has been generated.
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266 | class DataLabel32 {
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267 | template<class TemplateAssemblerType>
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268 | friend class AbstractMacroAssembler;
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269 | friend class LinkBuffer;
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270 | public:
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271 | DataLabel32()
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272 | {
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273 | }
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274 |
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275 | DataLabel32(AbstractMacroAssembler<AssemblerType>* masm)
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276 | : m_label(masm->m_assembler.label())
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277 | {
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278 | }
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279 |
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280 | private:
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281 | JmpDst m_label;
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282 | };
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283 |
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284 | // Call:
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285 | //
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286 | // A Call object is a reference to a call instruction that has been planted
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287 | // into the code buffer - it is typically used to link the call, setting the
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288 | // relative offset such that when executed it will call to the desired
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289 | // destination.
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290 | class Call {
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291 | template<class TemplateAssemblerType>
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292 | friend class AbstractMacroAssembler;
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293 |
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294 | public:
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295 | enum Flags {
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296 | None = 0x0,
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297 | Linkable = 0x1,
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298 | Near = 0x2,
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299 | LinkableNear = 0x3,
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300 | };
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301 |
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302 | Call()
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303 | : m_flags(None)
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304 | {
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305 | }
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306 |
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307 | Call(JmpSrc jmp, Flags flags)
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308 | : m_jmp(jmp)
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309 | , m_flags(flags)
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310 | {
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311 | }
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312 |
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313 | bool isFlagSet(Flags flag)
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314 | {
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315 | return m_flags & flag;
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316 | }
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317 |
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318 | static Call fromTailJump(Jump jump)
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319 | {
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320 | return Call(jump.m_jmp, Linkable);
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321 | }
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322 |
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323 | void enableLatePatch()
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324 | {
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325 | m_jmp.enableLatePatch();
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326 | }
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327 |
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328 | JmpSrc m_jmp;
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329 | private:
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330 | Flags m_flags;
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331 | };
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332 |
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333 | // Jump:
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334 | //
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335 | // A jump object is a reference to a jump instruction that has been planted
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336 | // into the code buffer - it is typically used to link the jump, setting the
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337 | // relative offset such that when executed it will jump to the desired
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338 | // destination.
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339 | class Jump {
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340 | template<class TemplateAssemblerType>
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341 | friend class AbstractMacroAssembler;
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342 | friend class Call;
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343 | friend class LinkBuffer;
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344 | public:
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345 | Jump()
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346 | {
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347 | }
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348 |
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349 | Jump(JmpSrc jmp)
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350 | : m_jmp(jmp)
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351 | {
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352 | }
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353 |
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354 | void link(AbstractMacroAssembler<AssemblerType>* masm)
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355 | {
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356 | masm->m_assembler.linkJump(m_jmp, masm->m_assembler.label());
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357 | }
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358 |
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359 | void linkTo(Label label, AbstractMacroAssembler<AssemblerType>* masm)
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360 | {
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361 | masm->m_assembler.linkJump(m_jmp, label.m_label);
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362 | }
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363 |
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364 | void enableLatePatch()
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365 | {
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366 | m_jmp.enableLatePatch();
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367 | }
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368 |
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369 | private:
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370 | JmpSrc m_jmp;
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371 | };
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372 |
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373 | // JumpList:
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374 | //
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375 | // A JumpList is a set of Jump objects.
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376 | // All jumps in the set will be linked to the same destination.
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377 | class JumpList {
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378 | friend class LinkBuffer;
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379 |
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380 | public:
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381 | typedef Vector<Jump, 16> JumpVector;
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382 |
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383 | void link(AbstractMacroAssembler<AssemblerType>* masm)
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384 | {
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385 | size_t size = m_jumps.size();
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386 | for (size_t i = 0; i < size; ++i)
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387 | m_jumps[i].link(masm);
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388 | m_jumps.clear();
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389 | }
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390 |
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391 | void linkTo(Label label, AbstractMacroAssembler<AssemblerType>* masm)
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392 | {
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393 | size_t size = m_jumps.size();
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394 | for (size_t i = 0; i < size; ++i)
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395 | m_jumps[i].linkTo(label, masm);
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396 | m_jumps.clear();
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397 | }
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398 |
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399 | void append(Jump jump)
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400 | {
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401 | m_jumps.append(jump);
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402 | }
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403 |
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404 | void append(JumpList& other)
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405 | {
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406 | m_jumps.append(other.m_jumps.begin(), other.m_jumps.size());
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407 | }
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408 |
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409 | bool empty()
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410 | {
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411 | return !m_jumps.size();
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412 | }
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413 |
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414 | const JumpVector& jumps() { return m_jumps; }
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415 |
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416 | private:
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417 | JumpVector m_jumps;
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418 | };
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419 |
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420 |
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421 | // Section 3: Misc admin methods
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422 |
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423 | static CodePtr trampolineAt(CodeRef ref, Label label)
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424 | {
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425 | return CodePtr(AssemblerType::getRelocatedAddress(ref.m_code.dataLocation(), label.m_label));
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426 | }
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427 |
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428 | size_t size()
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429 | {
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430 | return m_assembler.size();
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431 | }
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432 |
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433 | Label label()
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434 | {
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435 | return Label(this);
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436 | }
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437 |
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438 | Label align()
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439 | {
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440 | m_assembler.align(16);
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441 | return Label(this);
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442 | }
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443 |
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444 | ptrdiff_t differenceBetween(Label from, Jump to)
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445 | {
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446 | return AssemblerType::getDifferenceBetweenLabels(from.m_label, to.m_jmp);
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447 | }
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448 |
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449 | ptrdiff_t differenceBetween(Label from, Call to)
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450 | {
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451 | return AssemblerType::getDifferenceBetweenLabels(from.m_label, to.m_jmp);
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452 | }
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453 |
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454 | ptrdiff_t differenceBetween(Label from, Label to)
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455 | {
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456 | return AssemblerType::getDifferenceBetweenLabels(from.m_label, to.m_label);
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457 | }
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458 |
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459 | ptrdiff_t differenceBetween(Label from, DataLabelPtr to)
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460 | {
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461 | return AssemblerType::getDifferenceBetweenLabels(from.m_label, to.m_label);
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462 | }
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463 |
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464 | ptrdiff_t differenceBetween(Label from, DataLabel32 to)
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465 | {
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466 | return AssemblerType::getDifferenceBetweenLabels(from.m_label, to.m_label);
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467 | }
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468 |
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469 | ptrdiff_t differenceBetween(DataLabelPtr from, Jump to)
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470 | {
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471 | return AssemblerType::getDifferenceBetweenLabels(from.m_label, to.m_jmp);
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472 | }
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473 |
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474 | ptrdiff_t differenceBetween(DataLabelPtr from, DataLabelPtr to)
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475 | {
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476 | return AssemblerType::getDifferenceBetweenLabels(from.m_label, to.m_label);
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477 | }
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478 |
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479 | ptrdiff_t differenceBetween(DataLabelPtr from, Call to)
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480 | {
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481 | return AssemblerType::getDifferenceBetweenLabels(from.m_label, to.m_jmp);
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482 | }
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483 |
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484 | protected:
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485 | AssemblerType m_assembler;
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486 |
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487 | friend class LinkBuffer;
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488 | friend class RepatchBuffer;
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489 |
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490 | static void linkJump(void* code, Jump jump, CodeLocationLabel target)
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491 | {
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492 | AssemblerType::linkJump(code, jump.m_jmp, target.dataLocation());
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493 | }
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494 |
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495 | static void linkPointer(void* code, typename AssemblerType::JmpDst label, void* value)
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496 | {
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497 | AssemblerType::linkPointer(code, label, value);
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498 | }
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499 |
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500 | static void* getLinkerAddress(void* code, typename AssemblerType::JmpSrc label)
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501 | {
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502 | return AssemblerType::getRelocatedAddress(code, label);
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503 | }
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504 |
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505 | static void* getLinkerAddress(void* code, typename AssemblerType::JmpDst label)
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506 | {
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507 | return AssemblerType::getRelocatedAddress(code, label);
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508 | }
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509 |
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510 | static unsigned getLinkerCallReturnOffset(Call call)
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511 | {
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512 | return AssemblerType::getCallReturnOffset(call.m_jmp);
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513 | }
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514 |
|
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515 | static void repatchJump(CodeLocationJump jump, CodeLocationLabel destination)
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516 | {
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517 | AssemblerType::relinkJump(jump.dataLocation(), destination.dataLocation());
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518 | }
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519 |
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520 | static void repatchNearCall(CodeLocationNearCall nearCall, CodeLocationLabel destination)
|
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521 | {
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522 | AssemblerType::relinkCall(nearCall.dataLocation(), destination.executableAddress());
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523 | }
|
---|
524 |
|
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525 | static void repatchInt32(CodeLocationDataLabel32 dataLabel32, int32_t value)
|
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526 | {
|
---|
527 | AssemblerType::repatchInt32(dataLabel32.dataLocation(), value);
|
---|
528 | }
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529 |
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530 | static void repatchPointer(CodeLocationDataLabelPtr dataLabelPtr, void* value)
|
---|
531 | {
|
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532 | AssemblerType::repatchPointer(dataLabelPtr.dataLocation(), value);
|
---|
533 | }
|
---|
534 |
|
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535 | static void repatchLoadPtrToLEA(CodeLocationInstruction instruction)
|
---|
536 | {
|
---|
537 | AssemblerType::repatchLoadPtrToLEA(instruction.dataLocation());
|
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538 | }
|
---|
539 | };
|
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540 |
|
---|
541 | } // namespace JSC
|
---|
542 |
|
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543 | #endif // ENABLE(ASSEMBLER)
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544 |
|
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545 | #endif // AbstractMacroAssembler_h
|
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