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14 | pmbaty | 1 | //===--- VTableBuilder.h - C++ vtable layout builder --------------*- C++ -*-=// |
2 | // |
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3 | // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. |
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4 | // See https://llvm.org/LICENSE.txt for license information. |
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5 | // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception |
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6 | // |
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7 | //===----------------------------------------------------------------------===// |
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8 | // |
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9 | // This contains code dealing with generation of the layout of virtual tables. |
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10 | // |
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11 | //===----------------------------------------------------------------------===// |
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12 | |||
13 | #ifndef LLVM_CLANG_AST_VTABLEBUILDER_H |
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14 | #define LLVM_CLANG_AST_VTABLEBUILDER_H |
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15 | |||
16 | #include "clang/AST/BaseSubobject.h" |
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17 | #include "clang/AST/CXXInheritance.h" |
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18 | #include "clang/AST/GlobalDecl.h" |
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19 | #include "clang/AST/RecordLayout.h" |
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20 | #include "clang/Basic/ABI.h" |
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21 | #include "clang/Basic/Thunk.h" |
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22 | #include "llvm/ADT/DenseMap.h" |
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23 | #include <memory> |
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24 | #include <utility> |
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25 | |||
26 | namespace clang { |
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27 | class CXXRecordDecl; |
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28 | |||
29 | /// Represents a single component in a vtable. |
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30 | class VTableComponent { |
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31 | public: |
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32 | enum Kind { |
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33 | CK_VCallOffset, |
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34 | CK_VBaseOffset, |
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35 | CK_OffsetToTop, |
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36 | CK_RTTI, |
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37 | CK_FunctionPointer, |
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38 | |||
39 | /// A pointer to the complete destructor. |
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40 | CK_CompleteDtorPointer, |
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41 | |||
42 | /// A pointer to the deleting destructor. |
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43 | CK_DeletingDtorPointer, |
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44 | |||
45 | /// An entry that is never used. |
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46 | /// |
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47 | /// In some cases, a vtable function pointer will end up never being |
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48 | /// called. Such vtable function pointers are represented as a |
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49 | /// CK_UnusedFunctionPointer. |
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50 | CK_UnusedFunctionPointer |
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51 | }; |
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52 | |||
53 | VTableComponent() = default; |
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54 | |||
55 | static VTableComponent MakeVCallOffset(CharUnits Offset) { |
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56 | return VTableComponent(CK_VCallOffset, Offset); |
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57 | } |
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58 | |||
59 | static VTableComponent MakeVBaseOffset(CharUnits Offset) { |
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60 | return VTableComponent(CK_VBaseOffset, Offset); |
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61 | } |
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62 | |||
63 | static VTableComponent MakeOffsetToTop(CharUnits Offset) { |
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64 | return VTableComponent(CK_OffsetToTop, Offset); |
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65 | } |
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66 | |||
67 | static VTableComponent MakeRTTI(const CXXRecordDecl *RD) { |
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68 | return VTableComponent(CK_RTTI, reinterpret_cast<uintptr_t>(RD)); |
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69 | } |
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70 | |||
71 | static VTableComponent MakeFunction(const CXXMethodDecl *MD) { |
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72 | assert(!isa<CXXDestructorDecl>(MD) && |
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73 | "Don't use MakeFunction with destructors!"); |
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74 | |||
75 | return VTableComponent(CK_FunctionPointer, |
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76 | reinterpret_cast<uintptr_t>(MD)); |
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77 | } |
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78 | |||
79 | static VTableComponent MakeCompleteDtor(const CXXDestructorDecl *DD) { |
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80 | return VTableComponent(CK_CompleteDtorPointer, |
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81 | reinterpret_cast<uintptr_t>(DD)); |
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82 | } |
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83 | |||
84 | static VTableComponent MakeDeletingDtor(const CXXDestructorDecl *DD) { |
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85 | return VTableComponent(CK_DeletingDtorPointer, |
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86 | reinterpret_cast<uintptr_t>(DD)); |
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87 | } |
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88 | |||
89 | static VTableComponent MakeUnusedFunction(const CXXMethodDecl *MD) { |
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90 | assert(!isa<CXXDestructorDecl>(MD) && |
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91 | "Don't use MakeUnusedFunction with destructors!"); |
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92 | return VTableComponent(CK_UnusedFunctionPointer, |
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93 | reinterpret_cast<uintptr_t>(MD)); |
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94 | } |
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95 | |||
96 | /// Get the kind of this vtable component. |
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97 | Kind getKind() const { |
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98 | return (Kind)(Value & 0x7); |
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99 | } |
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100 | |||
101 | CharUnits getVCallOffset() const { |
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102 | assert(getKind() == CK_VCallOffset && "Invalid component kind!"); |
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103 | |||
104 | return getOffset(); |
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105 | } |
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106 | |||
107 | CharUnits getVBaseOffset() const { |
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108 | assert(getKind() == CK_VBaseOffset && "Invalid component kind!"); |
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109 | |||
110 | return getOffset(); |
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111 | } |
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112 | |||
113 | CharUnits getOffsetToTop() const { |
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114 | assert(getKind() == CK_OffsetToTop && "Invalid component kind!"); |
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115 | |||
116 | return getOffset(); |
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117 | } |
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118 | |||
119 | const CXXRecordDecl *getRTTIDecl() const { |
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120 | assert(isRTTIKind() && "Invalid component kind!"); |
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121 | return reinterpret_cast<CXXRecordDecl *>(getPointer()); |
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122 | } |
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123 | |||
124 | const CXXMethodDecl *getFunctionDecl() const { |
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125 | assert(isFunctionPointerKind() && "Invalid component kind!"); |
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126 | if (isDestructorKind()) |
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127 | return getDestructorDecl(); |
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128 | return reinterpret_cast<CXXMethodDecl *>(getPointer()); |
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129 | } |
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130 | |||
131 | const CXXDestructorDecl *getDestructorDecl() const { |
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132 | assert(isDestructorKind() && "Invalid component kind!"); |
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133 | return reinterpret_cast<CXXDestructorDecl *>(getPointer()); |
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134 | } |
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135 | |||
136 | const CXXMethodDecl *getUnusedFunctionDecl() const { |
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137 | assert(getKind() == CK_UnusedFunctionPointer && "Invalid component kind!"); |
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138 | return reinterpret_cast<CXXMethodDecl *>(getPointer()); |
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139 | } |
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140 | |||
141 | bool isDestructorKind() const { return isDestructorKind(getKind()); } |
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142 | |||
143 | bool isUsedFunctionPointerKind() const { |
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144 | return isUsedFunctionPointerKind(getKind()); |
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145 | } |
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146 | |||
147 | bool isFunctionPointerKind() const { |
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148 | return isFunctionPointerKind(getKind()); |
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149 | } |
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150 | |||
151 | bool isRTTIKind() const { return isRTTIKind(getKind()); } |
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152 | |||
153 | GlobalDecl getGlobalDecl() const { |
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154 | assert(isUsedFunctionPointerKind() && |
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155 | "GlobalDecl can be created only from virtual function"); |
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156 | |||
157 | auto *DtorDecl = dyn_cast<CXXDestructorDecl>(getFunctionDecl()); |
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158 | switch (getKind()) { |
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159 | case CK_FunctionPointer: |
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160 | return GlobalDecl(getFunctionDecl()); |
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161 | case CK_CompleteDtorPointer: |
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162 | return GlobalDecl(DtorDecl, CXXDtorType::Dtor_Complete); |
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163 | case CK_DeletingDtorPointer: |
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164 | return GlobalDecl(DtorDecl, CXXDtorType::Dtor_Deleting); |
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165 | case CK_VCallOffset: |
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166 | case CK_VBaseOffset: |
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167 | case CK_OffsetToTop: |
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168 | case CK_RTTI: |
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169 | case CK_UnusedFunctionPointer: |
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170 | llvm_unreachable("Only function pointers kinds"); |
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171 | } |
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172 | llvm_unreachable("Should already return"); |
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173 | } |
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174 | |||
175 | private: |
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176 | static bool isFunctionPointerKind(Kind ComponentKind) { |
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177 | return isUsedFunctionPointerKind(ComponentKind) || |
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178 | ComponentKind == CK_UnusedFunctionPointer; |
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179 | } |
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180 | static bool isUsedFunctionPointerKind(Kind ComponentKind) { |
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181 | return ComponentKind == CK_FunctionPointer || |
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182 | isDestructorKind(ComponentKind); |
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183 | } |
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184 | static bool isDestructorKind(Kind ComponentKind) { |
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185 | return ComponentKind == CK_CompleteDtorPointer || |
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186 | ComponentKind == CK_DeletingDtorPointer; |
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187 | } |
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188 | static bool isRTTIKind(Kind ComponentKind) { |
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189 | return ComponentKind == CK_RTTI; |
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190 | } |
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191 | |||
192 | VTableComponent(Kind ComponentKind, CharUnits Offset) { |
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193 | assert((ComponentKind == CK_VCallOffset || |
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194 | ComponentKind == CK_VBaseOffset || |
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195 | ComponentKind == CK_OffsetToTop) && "Invalid component kind!"); |
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196 | assert(Offset.getQuantity() < (1LL << 56) && "Offset is too big!"); |
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197 | assert(Offset.getQuantity() >= -(1LL << 56) && "Offset is too small!"); |
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198 | |||
199 | Value = (uint64_t(Offset.getQuantity()) << 3) | ComponentKind; |
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200 | } |
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201 | |||
202 | VTableComponent(Kind ComponentKind, uintptr_t Ptr) { |
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203 | assert((isRTTIKind(ComponentKind) || isFunctionPointerKind(ComponentKind)) && |
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204 | "Invalid component kind!"); |
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205 | |||
206 | assert((Ptr & 7) == 0 && "Pointer not sufficiently aligned!"); |
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207 | |||
208 | Value = Ptr | ComponentKind; |
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209 | } |
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210 | |||
211 | CharUnits getOffset() const { |
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212 | assert((getKind() == CK_VCallOffset || getKind() == CK_VBaseOffset || |
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213 | getKind() == CK_OffsetToTop) && "Invalid component kind!"); |
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214 | |||
215 | return CharUnits::fromQuantity(Value >> 3); |
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216 | } |
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217 | |||
218 | uintptr_t getPointer() const { |
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219 | assert((getKind() == CK_RTTI || isFunctionPointerKind()) && |
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220 | "Invalid component kind!"); |
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221 | |||
222 | return static_cast<uintptr_t>(Value & ~7ULL); |
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223 | } |
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224 | |||
225 | /// The kind is stored in the lower 3 bits of the value. For offsets, we |
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226 | /// make use of the facts that classes can't be larger than 2^55 bytes, |
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227 | /// so we store the offset in the lower part of the 61 bits that remain. |
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228 | /// (The reason that we're not simply using a PointerIntPair here is that we |
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229 | /// need the offsets to be 64-bit, even when on a 32-bit machine). |
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230 | int64_t Value; |
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231 | }; |
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232 | |||
233 | class VTableLayout { |
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234 | public: |
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235 | typedef std::pair<uint64_t, ThunkInfo> VTableThunkTy; |
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236 | struct AddressPointLocation { |
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237 | unsigned VTableIndex, AddressPointIndex; |
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238 | }; |
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239 | typedef llvm::DenseMap<BaseSubobject, AddressPointLocation> |
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240 | AddressPointsMapTy; |
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241 | |||
242 | // Mapping between the VTable index and address point index. This is useful |
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243 | // when you don't care about the base subobjects and only want the address |
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244 | // point for a given vtable index. |
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245 | typedef llvm::SmallVector<unsigned, 4> AddressPointsIndexMapTy; |
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246 | |||
247 | private: |
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248 | // Stores the component indices of the first component of each virtual table in |
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249 | // the virtual table group. To save a little memory in the common case where |
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250 | // the vtable group contains a single vtable, an empty vector here represents |
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251 | // the vector {0}. |
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252 | OwningArrayRef<size_t> VTableIndices; |
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253 | |||
254 | OwningArrayRef<VTableComponent> VTableComponents; |
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255 | |||
256 | /// Contains thunks needed by vtables, sorted by indices. |
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257 | OwningArrayRef<VTableThunkTy> VTableThunks; |
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258 | |||
259 | /// Address points for all vtables. |
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260 | AddressPointsMapTy AddressPoints; |
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261 | |||
262 | /// Address points for all vtable indices. |
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263 | AddressPointsIndexMapTy AddressPointIndices; |
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264 | |||
265 | public: |
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266 | VTableLayout(ArrayRef<size_t> VTableIndices, |
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267 | ArrayRef<VTableComponent> VTableComponents, |
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268 | ArrayRef<VTableThunkTy> VTableThunks, |
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269 | const AddressPointsMapTy &AddressPoints); |
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270 | ~VTableLayout(); |
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271 | |||
272 | ArrayRef<VTableComponent> vtable_components() const { |
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273 | return VTableComponents; |
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274 | } |
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275 | |||
276 | ArrayRef<VTableThunkTy> vtable_thunks() const { |
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277 | return VTableThunks; |
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278 | } |
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279 | |||
280 | AddressPointLocation getAddressPoint(BaseSubobject Base) const { |
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281 | assert(AddressPoints.count(Base) && "Did not find address point!"); |
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282 | return AddressPoints.find(Base)->second; |
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283 | } |
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284 | |||
285 | const AddressPointsMapTy &getAddressPoints() const { |
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286 | return AddressPoints; |
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287 | } |
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288 | |||
289 | const AddressPointsIndexMapTy &getAddressPointIndices() const { |
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290 | return AddressPointIndices; |
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291 | } |
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292 | |||
293 | size_t getNumVTables() const { |
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294 | if (VTableIndices.empty()) |
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295 | return 1; |
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296 | return VTableIndices.size(); |
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297 | } |
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298 | |||
299 | size_t getVTableOffset(size_t i) const { |
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300 | if (VTableIndices.empty()) { |
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301 | assert(i == 0); |
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302 | return 0; |
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303 | } |
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304 | return VTableIndices[i]; |
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305 | } |
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306 | |||
307 | size_t getVTableSize(size_t i) const { |
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308 | if (VTableIndices.empty()) { |
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309 | assert(i == 0); |
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310 | return vtable_components().size(); |
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311 | } |
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312 | |||
313 | size_t thisIndex = VTableIndices[i]; |
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314 | size_t nextIndex = (i + 1 == VTableIndices.size()) |
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315 | ? vtable_components().size() |
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316 | : VTableIndices[i + 1]; |
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317 | return nextIndex - thisIndex; |
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318 | } |
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319 | }; |
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320 | |||
321 | class VTableContextBase { |
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322 | public: |
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323 | typedef SmallVector<ThunkInfo, 1> ThunkInfoVectorTy; |
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324 | |||
325 | bool isMicrosoft() const { return IsMicrosoftABI; } |
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326 | |||
327 | virtual ~VTableContextBase() {} |
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328 | |||
329 | protected: |
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330 | typedef llvm::DenseMap<const CXXMethodDecl *, ThunkInfoVectorTy> ThunksMapTy; |
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331 | |||
332 | /// Contains all thunks that a given method decl will need. |
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333 | ThunksMapTy Thunks; |
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334 | |||
335 | /// Compute and store all vtable related information (vtable layout, vbase |
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336 | /// offset offsets, thunks etc) for the given record decl. |
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337 | virtual void computeVTableRelatedInformation(const CXXRecordDecl *RD) = 0; |
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338 | |||
339 | VTableContextBase(bool MS) : IsMicrosoftABI(MS) {} |
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340 | |||
341 | public: |
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342 | virtual const ThunkInfoVectorTy *getThunkInfo(GlobalDecl GD) { |
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343 | const CXXMethodDecl *MD = cast<CXXMethodDecl>(GD.getDecl()->getCanonicalDecl()); |
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344 | computeVTableRelatedInformation(MD->getParent()); |
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345 | |||
346 | // This assumes that all the destructors present in the vtable |
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347 | // use exactly the same set of thunks. |
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348 | ThunksMapTy::const_iterator I = Thunks.find(MD); |
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349 | if (I == Thunks.end()) { |
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350 | // We did not find a thunk for this method. |
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351 | return nullptr; |
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352 | } |
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353 | |||
354 | return &I->second; |
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355 | } |
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356 | |||
357 | bool IsMicrosoftABI; |
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358 | |||
359 | /// Determine whether this function should be assigned a vtable slot. |
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360 | static bool hasVtableSlot(const CXXMethodDecl *MD); |
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361 | }; |
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362 | |||
363 | class ItaniumVTableContext : public VTableContextBase { |
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364 | private: |
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365 | |||
366 | /// Contains the index (relative to the vtable address point) |
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367 | /// where the function pointer for a virtual function is stored. |
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368 | typedef llvm::DenseMap<GlobalDecl, int64_t> MethodVTableIndicesTy; |
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369 | MethodVTableIndicesTy MethodVTableIndices; |
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370 | |||
371 | typedef llvm::DenseMap<const CXXRecordDecl *, |
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372 | std::unique_ptr<const VTableLayout>> |
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373 | VTableLayoutMapTy; |
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374 | VTableLayoutMapTy VTableLayouts; |
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375 | |||
376 | typedef std::pair<const CXXRecordDecl *, |
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377 | const CXXRecordDecl *> ClassPairTy; |
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378 | |||
379 | /// vtable offsets for offsets of virtual bases of a class. |
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380 | /// |
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381 | /// Contains the vtable offset (relative to the address point) in chars |
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382 | /// where the offsets for virtual bases of a class are stored. |
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383 | typedef llvm::DenseMap<ClassPairTy, CharUnits> |
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384 | VirtualBaseClassOffsetOffsetsMapTy; |
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385 | VirtualBaseClassOffsetOffsetsMapTy VirtualBaseClassOffsetOffsets; |
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386 | |||
387 | void computeVTableRelatedInformation(const CXXRecordDecl *RD) override; |
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388 | |||
389 | public: |
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390 | enum VTableComponentLayout { |
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391 | /// Components in the vtable are pointers to other structs/functions. |
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392 | Pointer, |
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393 | |||
394 | /// Components in the vtable are relative offsets between the vtable and the |
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395 | /// other structs/functions. |
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396 | Relative, |
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397 | }; |
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398 | |||
399 | ItaniumVTableContext(ASTContext &Context, |
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400 | VTableComponentLayout ComponentLayout = Pointer); |
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401 | ~ItaniumVTableContext() override; |
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402 | |||
403 | const VTableLayout &getVTableLayout(const CXXRecordDecl *RD) { |
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404 | computeVTableRelatedInformation(RD); |
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405 | assert(VTableLayouts.count(RD) && "No layout for this record decl!"); |
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406 | |||
407 | return *VTableLayouts[RD]; |
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408 | } |
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409 | |||
410 | std::unique_ptr<VTableLayout> createConstructionVTableLayout( |
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411 | const CXXRecordDecl *MostDerivedClass, CharUnits MostDerivedClassOffset, |
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412 | bool MostDerivedClassIsVirtual, const CXXRecordDecl *LayoutClass); |
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413 | |||
414 | /// Locate a virtual function in the vtable. |
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415 | /// |
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416 | /// Return the index (relative to the vtable address point) where the |
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417 | /// function pointer for the given virtual function is stored. |
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418 | uint64_t getMethodVTableIndex(GlobalDecl GD); |
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419 | |||
420 | /// Return the offset in chars (relative to the vtable address point) where |
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421 | /// the offset of the virtual base that contains the given base is stored, |
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422 | /// otherwise, if no virtual base contains the given class, return 0. |
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423 | /// |
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424 | /// Base must be a virtual base class or an unambiguous base. |
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425 | CharUnits getVirtualBaseOffsetOffset(const CXXRecordDecl *RD, |
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426 | const CXXRecordDecl *VBase); |
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427 | |||
428 | static bool classof(const VTableContextBase *VT) { |
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429 | return !VT->isMicrosoft(); |
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430 | } |
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431 | |||
432 | VTableComponentLayout getVTableComponentLayout() const { |
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433 | return ComponentLayout; |
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434 | } |
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435 | |||
436 | bool isPointerLayout() const { return ComponentLayout == Pointer; } |
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437 | bool isRelativeLayout() const { return ComponentLayout == Relative; } |
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438 | |||
439 | private: |
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440 | VTableComponentLayout ComponentLayout; |
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441 | }; |
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442 | |||
443 | /// Holds information about the inheritance path to a virtual base or function |
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444 | /// table pointer. A record may contain as many vfptrs or vbptrs as there are |
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445 | /// base subobjects. |
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446 | struct VPtrInfo { |
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447 | typedef SmallVector<const CXXRecordDecl *, 1> BasePath; |
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448 | |||
449 | VPtrInfo(const CXXRecordDecl *RD) |
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450 | : ObjectWithVPtr(RD), IntroducingObject(RD), NextBaseToMangle(RD) {} |
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451 | |||
452 | /// This is the most derived class that has this vptr at offset zero. When |
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453 | /// single inheritance is used, this is always the most derived class. If |
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454 | /// multiple inheritance is used, it may be any direct or indirect base. |
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455 | const CXXRecordDecl *ObjectWithVPtr; |
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456 | |||
457 | /// This is the class that introduced the vptr by declaring new virtual |
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458 | /// methods or virtual bases. |
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459 | const CXXRecordDecl *IntroducingObject; |
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460 | |||
461 | /// IntroducingObject is at this offset from its containing complete object or |
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462 | /// virtual base. |
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463 | CharUnits NonVirtualOffset; |
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464 | |||
465 | /// The bases from the inheritance path that got used to mangle the vbtable |
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466 | /// name. This is not really a full path like a CXXBasePath. It holds the |
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467 | /// subset of records that need to be mangled into the vbtable symbol name in |
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468 | /// order to get a unique name. |
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469 | BasePath MangledPath; |
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470 | |||
471 | /// The next base to push onto the mangled path if this path is ambiguous in a |
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472 | /// derived class. If it's null, then it's already been pushed onto the path. |
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473 | const CXXRecordDecl *NextBaseToMangle; |
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474 | |||
475 | /// The set of possibly indirect vbases that contain this vbtable. When a |
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476 | /// derived class indirectly inherits from the same vbase twice, we only keep |
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477 | /// vtables and their paths from the first instance. |
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478 | BasePath ContainingVBases; |
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479 | |||
480 | /// This holds the base classes path from the complete type to the first base |
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481 | /// with the given vfptr offset, in the base-to-derived order. Only used for |
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482 | /// vftables. |
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483 | BasePath PathToIntroducingObject; |
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484 | |||
485 | /// Static offset from the top of the most derived class to this vfptr, |
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486 | /// including any virtual base offset. Only used for vftables. |
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487 | CharUnits FullOffsetInMDC; |
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488 | |||
489 | /// The vptr is stored inside the non-virtual component of this virtual base. |
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490 | const CXXRecordDecl *getVBaseWithVPtr() const { |
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491 | return ContainingVBases.empty() ? nullptr : ContainingVBases.front(); |
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492 | } |
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493 | }; |
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494 | |||
495 | typedef SmallVector<std::unique_ptr<VPtrInfo>, 2> VPtrInfoVector; |
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496 | |||
497 | /// All virtual base related information about a given record decl. Includes |
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498 | /// information on all virtual base tables and the path components that are used |
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499 | /// to mangle them. |
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500 | struct VirtualBaseInfo { |
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501 | /// A map from virtual base to vbtable index for doing a conversion from the |
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502 | /// the derived class to the a base. |
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503 | llvm::DenseMap<const CXXRecordDecl *, unsigned> VBTableIndices; |
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504 | |||
505 | /// Information on all virtual base tables used when this record is the most |
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506 | /// derived class. |
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507 | VPtrInfoVector VBPtrPaths; |
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508 | }; |
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509 | |||
510 | struct MethodVFTableLocation { |
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511 | /// If nonzero, holds the vbtable index of the virtual base with the vfptr. |
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512 | uint64_t VBTableIndex; |
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513 | |||
514 | /// If nonnull, holds the last vbase which contains the vfptr that the |
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515 | /// method definition is adjusted to. |
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516 | const CXXRecordDecl *VBase; |
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517 | |||
518 | /// This is the offset of the vfptr from the start of the last vbase, or the |
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519 | /// complete type if there are no virtual bases. |
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520 | CharUnits VFPtrOffset; |
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521 | |||
522 | /// Method's index in the vftable. |
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523 | uint64_t Index; |
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524 | |||
525 | MethodVFTableLocation() |
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526 | : VBTableIndex(0), VBase(nullptr), VFPtrOffset(CharUnits::Zero()), |
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527 | Index(0) {} |
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528 | |||
529 | MethodVFTableLocation(uint64_t VBTableIndex, const CXXRecordDecl *VBase, |
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530 | CharUnits VFPtrOffset, uint64_t Index) |
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531 | : VBTableIndex(VBTableIndex), VBase(VBase), VFPtrOffset(VFPtrOffset), |
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532 | Index(Index) {} |
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533 | |||
534 | bool operator<(const MethodVFTableLocation &other) const { |
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535 | if (VBTableIndex != other.VBTableIndex) { |
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536 | assert(VBase != other.VBase); |
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537 | return VBTableIndex < other.VBTableIndex; |
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538 | } |
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539 | return std::tie(VFPtrOffset, Index) < |
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540 | std::tie(other.VFPtrOffset, other.Index); |
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541 | } |
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542 | }; |
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543 | |||
544 | class MicrosoftVTableContext : public VTableContextBase { |
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545 | public: |
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546 | |||
547 | private: |
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548 | ASTContext &Context; |
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549 | |||
550 | typedef llvm::DenseMap<GlobalDecl, MethodVFTableLocation> |
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551 | MethodVFTableLocationsTy; |
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552 | MethodVFTableLocationsTy MethodVFTableLocations; |
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553 | |||
554 | typedef llvm::DenseMap<const CXXRecordDecl *, std::unique_ptr<VPtrInfoVector>> |
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555 | VFPtrLocationsMapTy; |
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556 | VFPtrLocationsMapTy VFPtrLocations; |
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557 | |||
558 | typedef std::pair<const CXXRecordDecl *, CharUnits> VFTableIdTy; |
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559 | typedef llvm::DenseMap<VFTableIdTy, std::unique_ptr<const VTableLayout>> |
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560 | VFTableLayoutMapTy; |
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561 | VFTableLayoutMapTy VFTableLayouts; |
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562 | |||
563 | llvm::DenseMap<const CXXRecordDecl *, std::unique_ptr<VirtualBaseInfo>> |
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564 | VBaseInfo; |
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565 | |||
566 | void enumerateVFPtrs(const CXXRecordDecl *ForClass, VPtrInfoVector &Result); |
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567 | |||
568 | void computeVTableRelatedInformation(const CXXRecordDecl *RD) override; |
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569 | |||
570 | void dumpMethodLocations(const CXXRecordDecl *RD, |
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571 | const MethodVFTableLocationsTy &NewMethods, |
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572 | raw_ostream &); |
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573 | |||
574 | const VirtualBaseInfo & |
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575 | computeVBTableRelatedInformation(const CXXRecordDecl *RD); |
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576 | |||
577 | void computeVTablePaths(bool ForVBTables, const CXXRecordDecl *RD, |
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578 | VPtrInfoVector &Paths); |
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579 | |||
580 | public: |
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581 | MicrosoftVTableContext(ASTContext &Context) |
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582 | : VTableContextBase(/*MS=*/true), Context(Context) {} |
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583 | |||
584 | ~MicrosoftVTableContext() override; |
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585 | |||
586 | const VPtrInfoVector &getVFPtrOffsets(const CXXRecordDecl *RD); |
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587 | |||
588 | const VTableLayout &getVFTableLayout(const CXXRecordDecl *RD, |
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589 | CharUnits VFPtrOffset); |
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590 | |||
591 | MethodVFTableLocation getMethodVFTableLocation(GlobalDecl GD); |
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592 | |||
593 | const ThunkInfoVectorTy *getThunkInfo(GlobalDecl GD) override { |
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594 | // Complete destructors don't have a slot in a vftable, so no thunks needed. |
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595 | if (isa<CXXDestructorDecl>(GD.getDecl()) && |
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596 | GD.getDtorType() == Dtor_Complete) |
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597 | return nullptr; |
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598 | return VTableContextBase::getThunkInfo(GD); |
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599 | } |
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600 | |||
601 | /// Returns the index of VBase in the vbtable of Derived. |
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602 | /// VBase must be a morally virtual base of Derived. |
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603 | /// The vbtable is an array of i32 offsets. The first entry is a self entry, |
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604 | /// and the rest are offsets from the vbptr to virtual bases. |
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605 | unsigned getVBTableIndex(const CXXRecordDecl *Derived, |
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606 | const CXXRecordDecl *VBase); |
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607 | |||
608 | const VPtrInfoVector &enumerateVBTables(const CXXRecordDecl *RD); |
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609 | |||
610 | static bool classof(const VTableContextBase *VT) { return VT->isMicrosoft(); } |
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611 | }; |
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612 | |||
613 | } // namespace clang |
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614 | |||
615 | #endif |