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Issue 205613002: Initial skeleton of Subzero. (Closed) Base URL: https://gerrit.chromium.org/gerrit/p/native_client/pnacl-subzero.git@master
Patch Set: Address Jan's latest comments Created 6 years, 8 months ago
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1 //===- subzero/src/IceOperand.h - High-level operands -----------*- C++ -*-===//
2 //
3 // The Subzero Code Generator
4 //
5 // This file is distributed under the University of Illinois Open Source
6 // License. See LICENSE.TXT for details.
7 //
8 //===----------------------------------------------------------------------===//
9 //
10 // This file declares the IceOperand class and its target-independent
11 // subclasses. The main classes are IceVariable, which represents an
12 // LLVM variable that is either register- or stack-allocated, and the
13 // IceConstant hierarchy, which represents integer, floating-point,
14 // and/or symbolic constants.
15 //
16 //===----------------------------------------------------------------------===//
17
18 #ifndef SUBZERO_SRC_ICEOPERAND_H
19 #define SUBZERO_SRC_ICEOPERAND_H
20
21 #include "IceDefs.h"
22 #include "IceTypes.h"
23
24 class IceOperand {
25 public:
26 enum OperandKind {
27 Constant,
28 ConstantInteger,
29 ConstantFloat,
30 ConstantDouble,
31 ConstantRelocatable,
32 Constant_Num,
33 Variable,
34 // Target-specific operand classes use Target as the starting
35 // point for their Kind enum space.
36 Target
37 };
38 OperandKind getKind() const { return Kind; }
39 IceType getType() const { return Type; }
40
41 // Every IceOperand keeps an array of the IceVariables referenced in
42 // the operand. This is so that the liveness operations can get
43 // quick access to the variables of interest, without having to dig
44 // so far into the operand.
45 uint32_t getNumVars() const { return NumVars; }
46 IceVariable *getVar(uint32_t I) const {
47 assert(I < getNumVars());
48 return Vars[I];
49 }
50 virtual void setUse(const IceInst *Inst, const IceCfgNode *Node) {}
51 virtual void dump(IceOstream &Str) const;
52
53 virtual ~IceOperand() {}
54
55 protected:
56 IceOperand(IceCfg *Cfg, OperandKind Kind, IceType Type)
57 : Type(Type), Kind(Kind) {}
58 const IceType Type;
59 const OperandKind Kind;
60 // Vars and NumVars are initialized by the derived class.
61 uint32_t NumVars;
62 IceVariable **Vars;
63 };
64
65 IceOstream &operator<<(IceOstream &Str, const IceOperand *O);
66
67 // IceConstant is the abstract base class for constants.
68 // TODO: better design of a minimal per-module constant pool,
69 // including synchronized access for parallel translation.
70 class IceConstant : public IceOperand {
71 public:
72 virtual void dump(IceOstream &Str) const = 0;
73
74 static bool classof(const IceOperand *Operand) {
75 OperandKind Kind = Operand->getKind();
76 return Kind >= Constant && Kind <= Constant_Num;
77 }
78
79 protected:
80 IceConstant(IceCfg *Cfg, OperandKind Kind, IceType Type)
81 : IceOperand(Cfg, Kind, Type) {
82 Vars = NULL;
83 NumVars = 0;
84 }
85 };
86
87 // IceConstantPrimitive<> wraps a primitive type.
88 template <typename T, IceOperand::OperandKind K>
89 class IceConstantPrimitive : public IceConstant {
90 public:
91 static IceConstantPrimitive *create(IceCfg *Cfg, IceType Type, T Value) {
92 // Use non-placement allocation for constants for now, until
93 // global constant pool issues are worked out.
94 return new IceConstantPrimitive(Cfg, Type, Value);
95 }
96 T getValue() const { return Value; }
97 virtual void dump(IceOstream &Str) const { Str << getValue(); }
98
99 static bool classof(const IceOperand *Operand) {
100 return Operand->getKind() == K;
101 }
102
103 private:
104 IceConstantPrimitive(IceCfg *Cfg, IceType Type, T Value)
105 : IceConstant(Cfg, K, Type), Value(Value) {}
106 const T Value;
107 };
108
109 typedef IceConstantPrimitive<uint64_t, IceOperand::ConstantInteger>
110 IceConstantInteger;
111 typedef IceConstantPrimitive<float, IceOperand::ConstantFloat> IceConstantFloat;
112 typedef IceConstantPrimitive<double, IceOperand::ConstantDouble>
113 IceConstantDouble;
114
115 // IceConstantRelocatable represents a symbolic constant combined with
116 // a fixed offset.
117 class IceConstantRelocatable : public IceConstant {
118 public:
119 static IceConstantRelocatable *create(IceCfg *Cfg, uint32_t CPIndex,
120 IceType Type, const void *Handle,
121 int64_t Offset,
122 const IceString &Name = "") {
123 // Use non-placement allocation for constants for now, until
124 // global constant pool issues are worked out.
125 return new IceConstantRelocatable(Cfg, Type, Handle, Offset, Name, CPIndex);
126 }
127 uint32_t getCPIndex() const { return CPIndex; }
128 const void *getHandle() const { return Handle; }
129 int64_t getOffset() const { return Offset; }
130 IceString getName() const { return Name; }
131 void setSuppressMangling(bool Value) { SuppressMangling = Value; }
132 bool getSuppressMangling() const { return SuppressMangling; }
133 virtual void dump(IceOstream &Str) const;
134
135 static bool classof(const IceOperand *Operand) {
136 OperandKind Kind = Operand->getKind();
137 return Kind == ConstantRelocatable;
138 }
139
140 private:
141 IceConstantRelocatable(IceCfg *Cfg, IceType Type, const void *Handle,
142 int64_t Offset, const IceString &Name,
143 uint32_t CPIndex)
144 : IceConstant(Cfg, ConstantRelocatable, Type), CPIndex(CPIndex),
145 Handle(Handle), Offset(Offset), Name(Name), SuppressMangling(false) {}
146 const uint32_t CPIndex; // index into ICE constant pool
147 const void *const Handle; // opaque handle e.g. to LLVM
148 const int64_t Offset; // fixed offset to add
149 const IceString Name; // optional for debug/dump
150 bool SuppressMangling;
151 };
152
153 // IceVariable represents an operand that is register-allocated or
154 // stack-allocated. If it is register-allocated, it will ultimately
155 // have a non-negative RegNum field.
156 class IceVariable : public IceOperand {
157 public:
158 static IceVariable *create(IceCfg *Cfg, IceType Type, const IceCfgNode *Node,
159 uint32_t Index, const IceString &Name) {
160 return new (Cfg->allocate<IceVariable>()) IceVariable(Cfg, Type, Node, Index , Name);
161 }
162
163 uint32_t getIndex() const { return Number; }
164 IceString getName() const;
165
166 IceInst *getDefinition() const { return DefInst; }
167 void setDefinition(IceInst *Inst, const IceCfgNode *Node);
168 void replaceDefinition(IceInst *Inst, const IceCfgNode *Node);
169
170 const IceCfgNode *getLocalUseNode() const { return DefNode; }
171 bool isMultiblockLife() const { return (DefNode == NULL); }
172 void setUse(const IceInst *Inst, const IceCfgNode *Node);
173
174 bool getIsArg() const { return IsArgument; }
175 void setIsArg(IceCfg *Cfg);
176
177 virtual void dump(IceOstream &Str) const;
178
179 static bool classof(const IceOperand *Operand) {
180 return Operand->getKind() == Variable;
181 }
182
183 private:
184 IceVariable(IceCfg *Cfg, IceType Type, const IceCfgNode *Node, uint32_t Index,
185 const IceString &Name)
186 : IceOperand(Cfg, Variable, Type), Number(Index), Name(Name),
187 DefInst(NULL), DefNode(Node), IsArgument(false) {
188 Vars = Cfg->allocateArrayOf<IceVariable *>(1);
189 Vars[0] = this;
190 NumVars = 1;
191 }
192 // Number is unique across all variables, and is used as a
193 // (bit)vector index for liveness analysis.
194 const uint32_t Number;
195 // Name is optional.
196 const IceString Name;
197 // DefInst is the instruction that produces this variable as its
198 // dest.
199 IceInst *DefInst;
200 // DefNode is the node where this variable was produced, and is
201 // reset to NULL if it is used outside that node. This is used for
202 // detecting isMultiblockLife().
203 const IceCfgNode *DefNode;
204 bool IsArgument;
205 };
206
207 #endif // SUBZERO_SRC_ICEOPERAND_H
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