clang 20.0.0 (based on r547379) from build 12806354. Bug: http://b/379133546 Test: N/A Change-Id: I2eb8938af55d809de674be63cb30cf27e801862b Upstream-Commit: ad834e67b1105d15ef907f6255d4c96e8e733f57
1920 lines
56 KiB
C++
1920 lines
56 KiB
C++
//===- ThreadSafetyTIL.h ----------------------------------------*- C++ -*-===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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//
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// This file defines a simple Typed Intermediate Language, or TIL, that is used
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// by the thread safety analysis (See ThreadSafety.cpp). The TIL is intended
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// to be largely independent of clang, in the hope that the analysis can be
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// reused for other non-C++ languages. All dependencies on clang/llvm should
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// go in ThreadSafetyUtil.h.
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//
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// Thread safety analysis works by comparing mutex expressions, e.g.
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//
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// class A { Mutex mu; int dat GUARDED_BY(this->mu); }
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// class B { A a; }
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//
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// void foo(B* b) {
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// (*b).a.mu.lock(); // locks (*b).a.mu
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// b->a.dat = 0; // substitute &b->a for 'this';
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// // requires lock on (&b->a)->mu
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// (b->a.mu).unlock(); // unlocks (b->a.mu)
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// }
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//
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// As illustrated by the above example, clang Exprs are not well-suited to
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// represent mutex expressions directly, since there is no easy way to compare
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// Exprs for equivalence. The thread safety analysis thus lowers clang Exprs
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// into a simple intermediate language (IL). The IL supports:
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//
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// (1) comparisons for semantic equality of expressions
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// (2) SSA renaming of variables
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// (3) wildcards and pattern matching over expressions
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// (4) hash-based expression lookup
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//
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// The TIL is currently very experimental, is intended only for use within
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// the thread safety analysis, and is subject to change without notice.
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// After the API stabilizes and matures, it may be appropriate to make this
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// more generally available to other analyses.
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//
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// UNDER CONSTRUCTION. USE AT YOUR OWN RISK.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_CLANG_ANALYSIS_ANALYSES_THREADSAFETYTIL_H
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#define LLVM_CLANG_ANALYSIS_ANALYSES_THREADSAFETYTIL_H
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#include "clang/AST/Decl.h"
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#include "clang/Analysis/Analyses/ThreadSafetyUtil.h"
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#include "clang/Basic/LLVM.h"
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#include "llvm/ADT/ArrayRef.h"
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#include "llvm/ADT/StringRef.h"
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#include "llvm/Support/Casting.h"
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#include "llvm/Support/raw_ostream.h"
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#include <algorithm>
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#include <cassert>
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#include <cstddef>
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#include <cstdint>
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#include <iterator>
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#include <optional>
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#include <string>
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#include <utility>
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namespace clang {
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class CallExpr;
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class Expr;
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class Stmt;
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namespace threadSafety {
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namespace til {
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class BasicBlock;
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/// Enum for the different distinct classes of SExpr
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enum TIL_Opcode : unsigned char {
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#define TIL_OPCODE_DEF(X) COP_##X,
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#include "ThreadSafetyOps.def"
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#undef TIL_OPCODE_DEF
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};
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/// Opcode for unary arithmetic operations.
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enum TIL_UnaryOpcode : unsigned char {
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UOP_Minus, // -
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UOP_BitNot, // ~
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UOP_LogicNot // !
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};
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/// Opcode for binary arithmetic operations.
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enum TIL_BinaryOpcode : unsigned char {
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BOP_Add, // +
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BOP_Sub, // -
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BOP_Mul, // *
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BOP_Div, // /
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BOP_Rem, // %
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BOP_Shl, // <<
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BOP_Shr, // >>
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BOP_BitAnd, // &
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BOP_BitXor, // ^
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BOP_BitOr, // |
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BOP_Eq, // ==
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BOP_Neq, // !=
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BOP_Lt, // <
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BOP_Leq, // <=
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BOP_Cmp, // <=>
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BOP_LogicAnd, // && (no short-circuit)
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BOP_LogicOr // || (no short-circuit)
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};
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/// Opcode for cast operations.
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enum TIL_CastOpcode : unsigned char {
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CAST_none = 0,
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// Extend precision of numeric type
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CAST_extendNum,
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// Truncate precision of numeric type
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CAST_truncNum,
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// Convert to floating point type
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CAST_toFloat,
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// Convert to integer type
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CAST_toInt,
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// Convert smart pointer to pointer (C++ only)
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CAST_objToPtr
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};
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const TIL_Opcode COP_Min = COP_Future;
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const TIL_Opcode COP_Max = COP_Branch;
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const TIL_UnaryOpcode UOP_Min = UOP_Minus;
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const TIL_UnaryOpcode UOP_Max = UOP_LogicNot;
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const TIL_BinaryOpcode BOP_Min = BOP_Add;
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const TIL_BinaryOpcode BOP_Max = BOP_LogicOr;
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const TIL_CastOpcode CAST_Min = CAST_none;
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const TIL_CastOpcode CAST_Max = CAST_toInt;
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/// Return the name of a unary opcode.
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StringRef getUnaryOpcodeString(TIL_UnaryOpcode Op);
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/// Return the name of a binary opcode.
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StringRef getBinaryOpcodeString(TIL_BinaryOpcode Op);
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/// ValueTypes are data types that can actually be held in registers.
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/// All variables and expressions must have a value type.
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/// Pointer types are further subdivided into the various heap-allocated
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/// types, such as functions, records, etc.
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/// Structured types that are passed by value (e.g. complex numbers)
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/// require special handling; they use BT_ValueRef, and size ST_0.
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struct ValueType {
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enum BaseType : unsigned char {
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BT_Void = 0,
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BT_Bool,
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BT_Int,
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BT_Float,
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BT_String, // String literals
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BT_Pointer,
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BT_ValueRef
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};
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enum SizeType : unsigned char {
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ST_0 = 0,
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ST_1,
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ST_8,
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ST_16,
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ST_32,
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ST_64,
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ST_128
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};
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ValueType(BaseType B, SizeType Sz, bool S, unsigned char VS)
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: Base(B), Size(Sz), Signed(S), VectSize(VS) {}
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inline static SizeType getSizeType(unsigned nbytes);
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template <class T>
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inline static ValueType getValueType();
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BaseType Base;
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SizeType Size;
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bool Signed;
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// 0 for scalar, otherwise num elements in vector
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unsigned char VectSize;
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};
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inline ValueType::SizeType ValueType::getSizeType(unsigned nbytes) {
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switch (nbytes) {
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case 1: return ST_8;
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case 2: return ST_16;
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case 4: return ST_32;
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case 8: return ST_64;
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case 16: return ST_128;
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default: return ST_0;
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}
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}
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template<>
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inline ValueType ValueType::getValueType<void>() {
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return ValueType(BT_Void, ST_0, false, 0);
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}
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template<>
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inline ValueType ValueType::getValueType<bool>() {
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return ValueType(BT_Bool, ST_1, false, 0);
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}
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template<>
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inline ValueType ValueType::getValueType<int8_t>() {
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return ValueType(BT_Int, ST_8, true, 0);
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}
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template<>
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inline ValueType ValueType::getValueType<uint8_t>() {
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return ValueType(BT_Int, ST_8, false, 0);
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}
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template<>
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inline ValueType ValueType::getValueType<int16_t>() {
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return ValueType(BT_Int, ST_16, true, 0);
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}
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template<>
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inline ValueType ValueType::getValueType<uint16_t>() {
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return ValueType(BT_Int, ST_16, false, 0);
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}
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template<>
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inline ValueType ValueType::getValueType<int32_t>() {
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return ValueType(BT_Int, ST_32, true, 0);
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}
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template<>
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inline ValueType ValueType::getValueType<uint32_t>() {
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return ValueType(BT_Int, ST_32, false, 0);
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}
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template<>
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inline ValueType ValueType::getValueType<int64_t>() {
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return ValueType(BT_Int, ST_64, true, 0);
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}
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template<>
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inline ValueType ValueType::getValueType<uint64_t>() {
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return ValueType(BT_Int, ST_64, false, 0);
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}
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template<>
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inline ValueType ValueType::getValueType<float>() {
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return ValueType(BT_Float, ST_32, true, 0);
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}
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template<>
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inline ValueType ValueType::getValueType<double>() {
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return ValueType(BT_Float, ST_64, true, 0);
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}
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template<>
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inline ValueType ValueType::getValueType<long double>() {
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return ValueType(BT_Float, ST_128, true, 0);
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}
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template<>
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inline ValueType ValueType::getValueType<StringRef>() {
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return ValueType(BT_String, getSizeType(sizeof(StringRef)), false, 0);
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}
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template<>
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inline ValueType ValueType::getValueType<void*>() {
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return ValueType(BT_Pointer, getSizeType(sizeof(void*)), false, 0);
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}
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/// Base class for AST nodes in the typed intermediate language.
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class SExpr {
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public:
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SExpr() = delete;
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TIL_Opcode opcode() const { return Opcode; }
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// Subclasses of SExpr must define the following:
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//
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// This(const This& E, ...) {
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// copy constructor: construct copy of E, with some additional arguments.
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// }
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//
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// template <class V>
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// typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
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// traverse all subexpressions, following the traversal/rewriter interface.
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// }
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//
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// template <class C> typename C::CType compare(CType* E, C& Cmp) {
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// compare all subexpressions, following the comparator interface
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// }
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void *operator new(size_t S, MemRegionRef &R) {
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return ::operator new(S, R);
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}
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/// SExpr objects must be created in an arena.
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void *operator new(size_t) = delete;
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/// SExpr objects cannot be deleted.
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// This declaration is public to workaround a gcc bug that breaks building
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// with REQUIRES_EH=1.
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void operator delete(void *) = delete;
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/// Returns the instruction ID for this expression.
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/// All basic block instructions have a unique ID (i.e. virtual register).
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unsigned id() const { return SExprID; }
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/// Returns the block, if this is an instruction in a basic block,
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/// otherwise returns null.
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BasicBlock *block() const { return Block; }
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/// Set the basic block and instruction ID for this expression.
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void setID(BasicBlock *B, unsigned id) { Block = B; SExprID = id; }
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protected:
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SExpr(TIL_Opcode Op) : Opcode(Op) {}
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SExpr(const SExpr &E) : Opcode(E.Opcode), Flags(E.Flags) {}
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SExpr &operator=(const SExpr &) = delete;
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const TIL_Opcode Opcode;
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unsigned char Reserved = 0;
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unsigned short Flags = 0;
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unsigned SExprID = 0;
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BasicBlock *Block = nullptr;
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};
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// Contains various helper functions for SExprs.
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namespace ThreadSafetyTIL {
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inline bool isTrivial(const SExpr *E) {
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TIL_Opcode Op = E->opcode();
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return Op == COP_Variable || Op == COP_Literal || Op == COP_LiteralPtr;
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}
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} // namespace ThreadSafetyTIL
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// Nodes which declare variables
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/// A named variable, e.g. "x".
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///
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/// There are two distinct places in which a Variable can appear in the AST.
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/// A variable declaration introduces a new variable, and can occur in 3 places:
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/// Let-expressions: (Let (x = t) u)
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/// Functions: (Function (x : t) u)
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/// Self-applicable functions (SFunction (x) t)
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///
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/// If a variable occurs in any other location, it is a reference to an existing
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/// variable declaration -- e.g. 'x' in (x * y + z). To save space, we don't
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/// allocate a separate AST node for variable references; a reference is just a
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/// pointer to the original declaration.
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class Variable : public SExpr {
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public:
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enum VariableKind {
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/// Let-variable
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VK_Let,
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/// Function parameter
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VK_Fun,
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/// SFunction (self) parameter
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VK_SFun
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};
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Variable(StringRef s, SExpr *D = nullptr)
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: SExpr(COP_Variable), Name(s), Definition(D) {
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Flags = VK_Let;
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}
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Variable(SExpr *D, const ValueDecl *Cvd = nullptr)
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: SExpr(COP_Variable), Name(Cvd ? Cvd->getName() : "_x"),
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Definition(D), Cvdecl(Cvd) {
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Flags = VK_Let;
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}
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Variable(const Variable &Vd, SExpr *D) // rewrite constructor
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: SExpr(Vd), Name(Vd.Name), Definition(D), Cvdecl(Vd.Cvdecl) {
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Flags = Vd.kind();
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}
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static bool classof(const SExpr *E) { return E->opcode() == COP_Variable; }
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/// Return the kind of variable (let, function param, or self)
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VariableKind kind() const { return static_cast<VariableKind>(Flags); }
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/// Return the name of the variable, if any.
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StringRef name() const { return Name; }
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/// Return the clang declaration for this variable, if any.
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const ValueDecl *clangDecl() const { return Cvdecl; }
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/// Return the definition of the variable.
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/// For let-vars, this is the setting expression.
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/// For function and self parameters, it is the type of the variable.
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SExpr *definition() { return Definition; }
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const SExpr *definition() const { return Definition; }
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void setName(StringRef S) { Name = S; }
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void setKind(VariableKind K) { Flags = K; }
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void setDefinition(SExpr *E) { Definition = E; }
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void setClangDecl(const ValueDecl *VD) { Cvdecl = VD; }
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template <class V>
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typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
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// This routine is only called for variable references.
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return Vs.reduceVariableRef(this);
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}
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template <class C>
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typename C::CType compare(const Variable* E, C& Cmp) const {
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return Cmp.compareVariableRefs(this, E);
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}
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private:
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friend class BasicBlock;
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friend class Function;
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friend class Let;
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friend class SFunction;
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// The name of the variable.
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StringRef Name;
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// The TIL type or definition.
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SExpr *Definition;
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// The clang declaration for this variable.
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const ValueDecl *Cvdecl = nullptr;
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};
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/// Placeholder for an expression that has not yet been created.
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/// Used to implement lazy copy and rewriting strategies.
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class Future : public SExpr {
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public:
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enum FutureStatus {
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FS_pending,
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FS_evaluating,
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FS_done
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};
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Future() : SExpr(COP_Future) {}
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virtual ~Future() = delete;
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static bool classof(const SExpr *E) { return E->opcode() == COP_Future; }
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// A lazy rewriting strategy should subclass Future and override this method.
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virtual SExpr *compute() { return nullptr; }
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// Return the result of this future if it exists, otherwise return null.
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SExpr *maybeGetResult() const { return Result; }
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// Return the result of this future; forcing it if necessary.
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SExpr *result() {
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switch (Status) {
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case FS_pending:
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return force();
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case FS_evaluating:
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return nullptr; // infinite loop; illegal recursion.
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case FS_done:
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return Result;
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}
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}
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template <class V>
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typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
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assert(Result && "Cannot traverse Future that has not been forced.");
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return Vs.traverse(Result, Ctx);
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}
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template <class C>
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typename C::CType compare(const Future* E, C& Cmp) const {
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if (!Result || !E->Result)
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return Cmp.comparePointers(this, E);
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return Cmp.compare(Result, E->Result);
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}
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private:
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SExpr* force();
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FutureStatus Status = FS_pending;
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SExpr *Result = nullptr;
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};
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/// Placeholder for expressions that cannot be represented in the TIL.
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class Undefined : public SExpr {
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public:
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Undefined(const Stmt *S = nullptr) : SExpr(COP_Undefined), Cstmt(S) {}
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Undefined(const Undefined &U) : SExpr(U), Cstmt(U.Cstmt) {}
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// The copy assignment operator is defined as deleted pending further
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// motivation.
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Undefined &operator=(const Undefined &) = delete;
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static bool classof(const SExpr *E) { return E->opcode() == COP_Undefined; }
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template <class V>
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typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
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return Vs.reduceUndefined(*this);
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}
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template <class C>
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typename C::CType compare(const Undefined* E, C& Cmp) const {
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return Cmp.trueResult();
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}
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private:
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const Stmt *Cstmt;
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};
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/// Placeholder for a wildcard that matches any other expression.
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class Wildcard : public SExpr {
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public:
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Wildcard() : SExpr(COP_Wildcard) {}
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Wildcard(const Wildcard &) = default;
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static bool classof(const SExpr *E) { return E->opcode() == COP_Wildcard; }
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template <class V> typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
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return Vs.reduceWildcard(*this);
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}
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template <class C>
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typename C::CType compare(const Wildcard* E, C& Cmp) const {
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return Cmp.trueResult();
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}
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};
|
|
|
|
template <class T> class LiteralT;
|
|
|
|
// Base class for literal values.
|
|
class Literal : public SExpr {
|
|
public:
|
|
Literal(const Expr *C)
|
|
: SExpr(COP_Literal), ValType(ValueType::getValueType<void>()), Cexpr(C) {}
|
|
Literal(ValueType VT) : SExpr(COP_Literal), ValType(VT) {}
|
|
Literal(const Literal &) = default;
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Literal; }
|
|
|
|
// The clang expression for this literal.
|
|
const Expr *clangExpr() const { return Cexpr; }
|
|
|
|
ValueType valueType() const { return ValType; }
|
|
|
|
template<class T> const LiteralT<T>& as() const {
|
|
return *static_cast<const LiteralT<T>*>(this);
|
|
}
|
|
template<class T> LiteralT<T>& as() {
|
|
return *static_cast<LiteralT<T>*>(this);
|
|
}
|
|
|
|
template <class V> typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx);
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Literal* E, C& Cmp) const {
|
|
// TODO: defer actual comparison to LiteralT
|
|
return Cmp.trueResult();
|
|
}
|
|
|
|
private:
|
|
const ValueType ValType;
|
|
const Expr *Cexpr = nullptr;
|
|
};
|
|
|
|
// Derived class for literal values, which stores the actual value.
|
|
template<class T>
|
|
class LiteralT : public Literal {
|
|
public:
|
|
LiteralT(T Dat) : Literal(ValueType::getValueType<T>()), Val(Dat) {}
|
|
LiteralT(const LiteralT<T> &L) : Literal(L), Val(L.Val) {}
|
|
|
|
// The copy assignment operator is defined as deleted pending further
|
|
// motivation.
|
|
LiteralT &operator=(const LiteralT<T> &) = delete;
|
|
|
|
T value() const { return Val;}
|
|
T& value() { return Val; }
|
|
|
|
private:
|
|
T Val;
|
|
};
|
|
|
|
template <class V>
|
|
typename V::R_SExpr Literal::traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
if (Cexpr)
|
|
return Vs.reduceLiteral(*this);
|
|
|
|
switch (ValType.Base) {
|
|
case ValueType::BT_Void:
|
|
break;
|
|
case ValueType::BT_Bool:
|
|
return Vs.reduceLiteralT(as<bool>());
|
|
case ValueType::BT_Int: {
|
|
switch (ValType.Size) {
|
|
case ValueType::ST_8:
|
|
if (ValType.Signed)
|
|
return Vs.reduceLiteralT(as<int8_t>());
|
|
else
|
|
return Vs.reduceLiteralT(as<uint8_t>());
|
|
case ValueType::ST_16:
|
|
if (ValType.Signed)
|
|
return Vs.reduceLiteralT(as<int16_t>());
|
|
else
|
|
return Vs.reduceLiteralT(as<uint16_t>());
|
|
case ValueType::ST_32:
|
|
if (ValType.Signed)
|
|
return Vs.reduceLiteralT(as<int32_t>());
|
|
else
|
|
return Vs.reduceLiteralT(as<uint32_t>());
|
|
case ValueType::ST_64:
|
|
if (ValType.Signed)
|
|
return Vs.reduceLiteralT(as<int64_t>());
|
|
else
|
|
return Vs.reduceLiteralT(as<uint64_t>());
|
|
default:
|
|
break;
|
|
}
|
|
}
|
|
case ValueType::BT_Float: {
|
|
switch (ValType.Size) {
|
|
case ValueType::ST_32:
|
|
return Vs.reduceLiteralT(as<float>());
|
|
case ValueType::ST_64:
|
|
return Vs.reduceLiteralT(as<double>());
|
|
default:
|
|
break;
|
|
}
|
|
}
|
|
case ValueType::BT_String:
|
|
return Vs.reduceLiteralT(as<StringRef>());
|
|
case ValueType::BT_Pointer:
|
|
return Vs.reduceLiteralT(as<void*>());
|
|
case ValueType::BT_ValueRef:
|
|
break;
|
|
}
|
|
return Vs.reduceLiteral(*this);
|
|
}
|
|
|
|
/// A Literal pointer to an object allocated in memory.
|
|
/// At compile time, pointer literals are represented by symbolic names.
|
|
class LiteralPtr : public SExpr {
|
|
public:
|
|
LiteralPtr(const ValueDecl *D) : SExpr(COP_LiteralPtr), Cvdecl(D) {}
|
|
LiteralPtr(const LiteralPtr &) = default;
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_LiteralPtr; }
|
|
|
|
// The clang declaration for the value that this pointer points to.
|
|
const ValueDecl *clangDecl() const { return Cvdecl; }
|
|
void setClangDecl(const ValueDecl *VD) { Cvdecl = VD; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
return Vs.reduceLiteralPtr(*this);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const LiteralPtr* E, C& Cmp) const {
|
|
if (!Cvdecl || !E->Cvdecl)
|
|
return Cmp.comparePointers(this, E);
|
|
return Cmp.comparePointers(Cvdecl, E->Cvdecl);
|
|
}
|
|
|
|
private:
|
|
const ValueDecl *Cvdecl;
|
|
};
|
|
|
|
/// A function -- a.k.a. lambda abstraction.
|
|
/// Functions with multiple arguments are created by currying,
|
|
/// e.g. (Function (x: Int) (Function (y: Int) (Code { return x + y })))
|
|
class Function : public SExpr {
|
|
public:
|
|
Function(Variable *Vd, SExpr *Bd)
|
|
: SExpr(COP_Function), VarDecl(Vd), Body(Bd) {
|
|
Vd->setKind(Variable::VK_Fun);
|
|
}
|
|
|
|
Function(const Function &F, Variable *Vd, SExpr *Bd) // rewrite constructor
|
|
: SExpr(F), VarDecl(Vd), Body(Bd) {
|
|
Vd->setKind(Variable::VK_Fun);
|
|
}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Function; }
|
|
|
|
Variable *variableDecl() { return VarDecl; }
|
|
const Variable *variableDecl() const { return VarDecl; }
|
|
|
|
SExpr *body() { return Body; }
|
|
const SExpr *body() const { return Body; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
// This is a variable declaration, so traverse the definition.
|
|
auto E0 = Vs.traverse(VarDecl->Definition, Vs.typeCtx(Ctx));
|
|
// Tell the rewriter to enter the scope of the function.
|
|
Variable *Nvd = Vs.enterScope(*VarDecl, E0);
|
|
auto E1 = Vs.traverse(Body, Vs.declCtx(Ctx));
|
|
Vs.exitScope(*VarDecl);
|
|
return Vs.reduceFunction(*this, Nvd, E1);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Function* E, C& Cmp) const {
|
|
typename C::CType Ct =
|
|
Cmp.compare(VarDecl->definition(), E->VarDecl->definition());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
Cmp.enterScope(variableDecl(), E->variableDecl());
|
|
Ct = Cmp.compare(body(), E->body());
|
|
Cmp.leaveScope();
|
|
return Ct;
|
|
}
|
|
|
|
private:
|
|
Variable *VarDecl;
|
|
SExpr* Body;
|
|
};
|
|
|
|
/// A self-applicable function.
|
|
/// A self-applicable function can be applied to itself. It's useful for
|
|
/// implementing objects and late binding.
|
|
class SFunction : public SExpr {
|
|
public:
|
|
SFunction(Variable *Vd, SExpr *B)
|
|
: SExpr(COP_SFunction), VarDecl(Vd), Body(B) {
|
|
assert(Vd->Definition == nullptr);
|
|
Vd->setKind(Variable::VK_SFun);
|
|
Vd->Definition = this;
|
|
}
|
|
|
|
SFunction(const SFunction &F, Variable *Vd, SExpr *B) // rewrite constructor
|
|
: SExpr(F), VarDecl(Vd), Body(B) {
|
|
assert(Vd->Definition == nullptr);
|
|
Vd->setKind(Variable::VK_SFun);
|
|
Vd->Definition = this;
|
|
}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_SFunction; }
|
|
|
|
Variable *variableDecl() { return VarDecl; }
|
|
const Variable *variableDecl() const { return VarDecl; }
|
|
|
|
SExpr *body() { return Body; }
|
|
const SExpr *body() const { return Body; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
// A self-variable points to the SFunction itself.
|
|
// A rewrite must introduce the variable with a null definition, and update
|
|
// it after 'this' has been rewritten.
|
|
Variable *Nvd = Vs.enterScope(*VarDecl, nullptr);
|
|
auto E1 = Vs.traverse(Body, Vs.declCtx(Ctx));
|
|
Vs.exitScope(*VarDecl);
|
|
// A rewrite operation will call SFun constructor to set Vvd->Definition.
|
|
return Vs.reduceSFunction(*this, Nvd, E1);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const SFunction* E, C& Cmp) const {
|
|
Cmp.enterScope(variableDecl(), E->variableDecl());
|
|
typename C::CType Ct = Cmp.compare(body(), E->body());
|
|
Cmp.leaveScope();
|
|
return Ct;
|
|
}
|
|
|
|
private:
|
|
Variable *VarDecl;
|
|
SExpr* Body;
|
|
};
|
|
|
|
/// A block of code -- e.g. the body of a function.
|
|
class Code : public SExpr {
|
|
public:
|
|
Code(SExpr *T, SExpr *B) : SExpr(COP_Code), ReturnType(T), Body(B) {}
|
|
Code(const Code &C, SExpr *T, SExpr *B) // rewrite constructor
|
|
: SExpr(C), ReturnType(T), Body(B) {}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Code; }
|
|
|
|
SExpr *returnType() { return ReturnType; }
|
|
const SExpr *returnType() const { return ReturnType; }
|
|
|
|
SExpr *body() { return Body; }
|
|
const SExpr *body() const { return Body; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Nt = Vs.traverse(ReturnType, Vs.typeCtx(Ctx));
|
|
auto Nb = Vs.traverse(Body, Vs.lazyCtx(Ctx));
|
|
return Vs.reduceCode(*this, Nt, Nb);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Code* E, C& Cmp) const {
|
|
typename C::CType Ct = Cmp.compare(returnType(), E->returnType());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
return Cmp.compare(body(), E->body());
|
|
}
|
|
|
|
private:
|
|
SExpr* ReturnType;
|
|
SExpr* Body;
|
|
};
|
|
|
|
/// A typed, writable location in memory
|
|
class Field : public SExpr {
|
|
public:
|
|
Field(SExpr *R, SExpr *B) : SExpr(COP_Field), Range(R), Body(B) {}
|
|
Field(const Field &C, SExpr *R, SExpr *B) // rewrite constructor
|
|
: SExpr(C), Range(R), Body(B) {}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Field; }
|
|
|
|
SExpr *range() { return Range; }
|
|
const SExpr *range() const { return Range; }
|
|
|
|
SExpr *body() { return Body; }
|
|
const SExpr *body() const { return Body; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Nr = Vs.traverse(Range, Vs.typeCtx(Ctx));
|
|
auto Nb = Vs.traverse(Body, Vs.lazyCtx(Ctx));
|
|
return Vs.reduceField(*this, Nr, Nb);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Field* E, C& Cmp) const {
|
|
typename C::CType Ct = Cmp.compare(range(), E->range());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
return Cmp.compare(body(), E->body());
|
|
}
|
|
|
|
private:
|
|
SExpr* Range;
|
|
SExpr* Body;
|
|
};
|
|
|
|
/// Apply an argument to a function.
|
|
/// Note that this does not actually call the function. Functions are curried,
|
|
/// so this returns a closure in which the first parameter has been applied.
|
|
/// Once all parameters have been applied, Call can be used to invoke the
|
|
/// function.
|
|
class Apply : public SExpr {
|
|
public:
|
|
Apply(SExpr *F, SExpr *A) : SExpr(COP_Apply), Fun(F), Arg(A) {}
|
|
Apply(const Apply &A, SExpr *F, SExpr *Ar) // rewrite constructor
|
|
: SExpr(A), Fun(F), Arg(Ar) {}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Apply; }
|
|
|
|
SExpr *fun() { return Fun; }
|
|
const SExpr *fun() const { return Fun; }
|
|
|
|
SExpr *arg() { return Arg; }
|
|
const SExpr *arg() const { return Arg; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Nf = Vs.traverse(Fun, Vs.subExprCtx(Ctx));
|
|
auto Na = Vs.traverse(Arg, Vs.subExprCtx(Ctx));
|
|
return Vs.reduceApply(*this, Nf, Na);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Apply* E, C& Cmp) const {
|
|
typename C::CType Ct = Cmp.compare(fun(), E->fun());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
return Cmp.compare(arg(), E->arg());
|
|
}
|
|
|
|
private:
|
|
SExpr* Fun;
|
|
SExpr* Arg;
|
|
};
|
|
|
|
/// Apply a self-argument to a self-applicable function.
|
|
class SApply : public SExpr {
|
|
public:
|
|
SApply(SExpr *Sf, SExpr *A = nullptr) : SExpr(COP_SApply), Sfun(Sf), Arg(A) {}
|
|
SApply(SApply &A, SExpr *Sf, SExpr *Ar = nullptr) // rewrite constructor
|
|
: SExpr(A), Sfun(Sf), Arg(Ar) {}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_SApply; }
|
|
|
|
SExpr *sfun() { return Sfun; }
|
|
const SExpr *sfun() const { return Sfun; }
|
|
|
|
SExpr *arg() { return Arg ? Arg : Sfun; }
|
|
const SExpr *arg() const { return Arg ? Arg : Sfun; }
|
|
|
|
bool isDelegation() const { return Arg != nullptr; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Nf = Vs.traverse(Sfun, Vs.subExprCtx(Ctx));
|
|
typename V::R_SExpr Na = Arg ? Vs.traverse(Arg, Vs.subExprCtx(Ctx))
|
|
: nullptr;
|
|
return Vs.reduceSApply(*this, Nf, Na);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const SApply* E, C& Cmp) const {
|
|
typename C::CType Ct = Cmp.compare(sfun(), E->sfun());
|
|
if (Cmp.notTrue(Ct) || (!arg() && !E->arg()))
|
|
return Ct;
|
|
return Cmp.compare(arg(), E->arg());
|
|
}
|
|
|
|
private:
|
|
SExpr* Sfun;
|
|
SExpr* Arg;
|
|
};
|
|
|
|
/// Project a named slot from a C++ struct or class.
|
|
class Project : public SExpr {
|
|
public:
|
|
Project(SExpr *R, const ValueDecl *Cvd)
|
|
: SExpr(COP_Project), Rec(R), Cvdecl(Cvd) {
|
|
assert(Cvd && "ValueDecl must not be null");
|
|
}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Project; }
|
|
|
|
SExpr *record() { return Rec; }
|
|
const SExpr *record() const { return Rec; }
|
|
|
|
const ValueDecl *clangDecl() const { return Cvdecl; }
|
|
|
|
bool isArrow() const { return (Flags & 0x01) != 0; }
|
|
|
|
void setArrow(bool b) {
|
|
if (b) Flags |= 0x01;
|
|
else Flags &= 0xFFFE;
|
|
}
|
|
|
|
StringRef slotName() const {
|
|
if (Cvdecl->getDeclName().isIdentifier())
|
|
return Cvdecl->getName();
|
|
if (!SlotName) {
|
|
SlotName = "";
|
|
llvm::raw_string_ostream OS(*SlotName);
|
|
Cvdecl->printName(OS);
|
|
}
|
|
return *SlotName;
|
|
}
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Nr = Vs.traverse(Rec, Vs.subExprCtx(Ctx));
|
|
return Vs.reduceProject(*this, Nr);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Project* E, C& Cmp) const {
|
|
typename C::CType Ct = Cmp.compare(record(), E->record());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
return Cmp.comparePointers(Cvdecl, E->Cvdecl);
|
|
}
|
|
|
|
private:
|
|
SExpr* Rec;
|
|
mutable std::optional<std::string> SlotName;
|
|
const ValueDecl *Cvdecl;
|
|
};
|
|
|
|
/// Call a function (after all arguments have been applied).
|
|
class Call : public SExpr {
|
|
public:
|
|
Call(SExpr *T, const CallExpr *Ce = nullptr)
|
|
: SExpr(COP_Call), Target(T), Cexpr(Ce) {}
|
|
Call(const Call &C, SExpr *T) : SExpr(C), Target(T), Cexpr(C.Cexpr) {}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Call; }
|
|
|
|
SExpr *target() { return Target; }
|
|
const SExpr *target() const { return Target; }
|
|
|
|
const CallExpr *clangCallExpr() const { return Cexpr; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Nt = Vs.traverse(Target, Vs.subExprCtx(Ctx));
|
|
return Vs.reduceCall(*this, Nt);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Call* E, C& Cmp) const {
|
|
return Cmp.compare(target(), E->target());
|
|
}
|
|
|
|
private:
|
|
SExpr* Target;
|
|
const CallExpr *Cexpr;
|
|
};
|
|
|
|
/// Allocate memory for a new value on the heap or stack.
|
|
class Alloc : public SExpr {
|
|
public:
|
|
enum AllocKind {
|
|
AK_Stack,
|
|
AK_Heap
|
|
};
|
|
|
|
Alloc(SExpr *D, AllocKind K) : SExpr(COP_Alloc), Dtype(D) { Flags = K; }
|
|
Alloc(const Alloc &A, SExpr *Dt) : SExpr(A), Dtype(Dt) { Flags = A.kind(); }
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Call; }
|
|
|
|
AllocKind kind() const { return static_cast<AllocKind>(Flags); }
|
|
|
|
SExpr *dataType() { return Dtype; }
|
|
const SExpr *dataType() const { return Dtype; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Nd = Vs.traverse(Dtype, Vs.declCtx(Ctx));
|
|
return Vs.reduceAlloc(*this, Nd);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Alloc* E, C& Cmp) const {
|
|
typename C::CType Ct = Cmp.compareIntegers(kind(), E->kind());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
return Cmp.compare(dataType(), E->dataType());
|
|
}
|
|
|
|
private:
|
|
SExpr* Dtype;
|
|
};
|
|
|
|
/// Load a value from memory.
|
|
class Load : public SExpr {
|
|
public:
|
|
Load(SExpr *P) : SExpr(COP_Load), Ptr(P) {}
|
|
Load(const Load &L, SExpr *P) : SExpr(L), Ptr(P) {}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Load; }
|
|
|
|
SExpr *pointer() { return Ptr; }
|
|
const SExpr *pointer() const { return Ptr; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Np = Vs.traverse(Ptr, Vs.subExprCtx(Ctx));
|
|
return Vs.reduceLoad(*this, Np);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Load* E, C& Cmp) const {
|
|
return Cmp.compare(pointer(), E->pointer());
|
|
}
|
|
|
|
private:
|
|
SExpr* Ptr;
|
|
};
|
|
|
|
/// Store a value to memory.
|
|
/// The destination is a pointer to a field, the source is the value to store.
|
|
class Store : public SExpr {
|
|
public:
|
|
Store(SExpr *P, SExpr *V) : SExpr(COP_Store), Dest(P), Source(V) {}
|
|
Store(const Store &S, SExpr *P, SExpr *V) : SExpr(S), Dest(P), Source(V) {}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Store; }
|
|
|
|
SExpr *destination() { return Dest; } // Address to store to
|
|
const SExpr *destination() const { return Dest; }
|
|
|
|
SExpr *source() { return Source; } // Value to store
|
|
const SExpr *source() const { return Source; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Np = Vs.traverse(Dest, Vs.subExprCtx(Ctx));
|
|
auto Nv = Vs.traverse(Source, Vs.subExprCtx(Ctx));
|
|
return Vs.reduceStore(*this, Np, Nv);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Store* E, C& Cmp) const {
|
|
typename C::CType Ct = Cmp.compare(destination(), E->destination());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
return Cmp.compare(source(), E->source());
|
|
}
|
|
|
|
private:
|
|
SExpr* Dest;
|
|
SExpr* Source;
|
|
};
|
|
|
|
/// If p is a reference to an array, then p[i] is a reference to the i'th
|
|
/// element of the array.
|
|
class ArrayIndex : public SExpr {
|
|
public:
|
|
ArrayIndex(SExpr *A, SExpr *N) : SExpr(COP_ArrayIndex), Array(A), Index(N) {}
|
|
ArrayIndex(const ArrayIndex &E, SExpr *A, SExpr *N)
|
|
: SExpr(E), Array(A), Index(N) {}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_ArrayIndex; }
|
|
|
|
SExpr *array() { return Array; }
|
|
const SExpr *array() const { return Array; }
|
|
|
|
SExpr *index() { return Index; }
|
|
const SExpr *index() const { return Index; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Na = Vs.traverse(Array, Vs.subExprCtx(Ctx));
|
|
auto Ni = Vs.traverse(Index, Vs.subExprCtx(Ctx));
|
|
return Vs.reduceArrayIndex(*this, Na, Ni);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const ArrayIndex* E, C& Cmp) const {
|
|
typename C::CType Ct = Cmp.compare(array(), E->array());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
return Cmp.compare(index(), E->index());
|
|
}
|
|
|
|
private:
|
|
SExpr* Array;
|
|
SExpr* Index;
|
|
};
|
|
|
|
/// Pointer arithmetic, restricted to arrays only.
|
|
/// If p is a reference to an array, then p + n, where n is an integer, is
|
|
/// a reference to a subarray.
|
|
class ArrayAdd : public SExpr {
|
|
public:
|
|
ArrayAdd(SExpr *A, SExpr *N) : SExpr(COP_ArrayAdd), Array(A), Index(N) {}
|
|
ArrayAdd(const ArrayAdd &E, SExpr *A, SExpr *N)
|
|
: SExpr(E), Array(A), Index(N) {}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_ArrayAdd; }
|
|
|
|
SExpr *array() { return Array; }
|
|
const SExpr *array() const { return Array; }
|
|
|
|
SExpr *index() { return Index; }
|
|
const SExpr *index() const { return Index; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Na = Vs.traverse(Array, Vs.subExprCtx(Ctx));
|
|
auto Ni = Vs.traverse(Index, Vs.subExprCtx(Ctx));
|
|
return Vs.reduceArrayAdd(*this, Na, Ni);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const ArrayAdd* E, C& Cmp) const {
|
|
typename C::CType Ct = Cmp.compare(array(), E->array());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
return Cmp.compare(index(), E->index());
|
|
}
|
|
|
|
private:
|
|
SExpr* Array;
|
|
SExpr* Index;
|
|
};
|
|
|
|
/// Simple arithmetic unary operations, e.g. negate and not.
|
|
/// These operations have no side-effects.
|
|
class UnaryOp : public SExpr {
|
|
public:
|
|
UnaryOp(TIL_UnaryOpcode Op, SExpr *E) : SExpr(COP_UnaryOp), Expr0(E) {
|
|
Flags = Op;
|
|
}
|
|
|
|
UnaryOp(const UnaryOp &U, SExpr *E) : SExpr(U), Expr0(E) { Flags = U.Flags; }
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_UnaryOp; }
|
|
|
|
TIL_UnaryOpcode unaryOpcode() const {
|
|
return static_cast<TIL_UnaryOpcode>(Flags);
|
|
}
|
|
|
|
SExpr *expr() { return Expr0; }
|
|
const SExpr *expr() const { return Expr0; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Ne = Vs.traverse(Expr0, Vs.subExprCtx(Ctx));
|
|
return Vs.reduceUnaryOp(*this, Ne);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const UnaryOp* E, C& Cmp) const {
|
|
typename C::CType Ct =
|
|
Cmp.compareIntegers(unaryOpcode(), E->unaryOpcode());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
return Cmp.compare(expr(), E->expr());
|
|
}
|
|
|
|
private:
|
|
SExpr* Expr0;
|
|
};
|
|
|
|
/// Simple arithmetic binary operations, e.g. +, -, etc.
|
|
/// These operations have no side effects.
|
|
class BinaryOp : public SExpr {
|
|
public:
|
|
BinaryOp(TIL_BinaryOpcode Op, SExpr *E0, SExpr *E1)
|
|
: SExpr(COP_BinaryOp), Expr0(E0), Expr1(E1) {
|
|
Flags = Op;
|
|
}
|
|
|
|
BinaryOp(const BinaryOp &B, SExpr *E0, SExpr *E1)
|
|
: SExpr(B), Expr0(E0), Expr1(E1) {
|
|
Flags = B.Flags;
|
|
}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_BinaryOp; }
|
|
|
|
TIL_BinaryOpcode binaryOpcode() const {
|
|
return static_cast<TIL_BinaryOpcode>(Flags);
|
|
}
|
|
|
|
SExpr *expr0() { return Expr0; }
|
|
const SExpr *expr0() const { return Expr0; }
|
|
|
|
SExpr *expr1() { return Expr1; }
|
|
const SExpr *expr1() const { return Expr1; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Ne0 = Vs.traverse(Expr0, Vs.subExprCtx(Ctx));
|
|
auto Ne1 = Vs.traverse(Expr1, Vs.subExprCtx(Ctx));
|
|
return Vs.reduceBinaryOp(*this, Ne0, Ne1);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const BinaryOp* E, C& Cmp) const {
|
|
typename C::CType Ct =
|
|
Cmp.compareIntegers(binaryOpcode(), E->binaryOpcode());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
Ct = Cmp.compare(expr0(), E->expr0());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
return Cmp.compare(expr1(), E->expr1());
|
|
}
|
|
|
|
private:
|
|
SExpr* Expr0;
|
|
SExpr* Expr1;
|
|
};
|
|
|
|
/// Cast expressions.
|
|
/// Cast expressions are essentially unary operations, but we treat them
|
|
/// as a distinct AST node because they only change the type of the result.
|
|
class Cast : public SExpr {
|
|
public:
|
|
Cast(TIL_CastOpcode Op, SExpr *E) : SExpr(COP_Cast), Expr0(E) { Flags = Op; }
|
|
Cast(const Cast &C, SExpr *E) : SExpr(C), Expr0(E) { Flags = C.Flags; }
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Cast; }
|
|
|
|
TIL_CastOpcode castOpcode() const {
|
|
return static_cast<TIL_CastOpcode>(Flags);
|
|
}
|
|
|
|
SExpr *expr() { return Expr0; }
|
|
const SExpr *expr() const { return Expr0; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Ne = Vs.traverse(Expr0, Vs.subExprCtx(Ctx));
|
|
return Vs.reduceCast(*this, Ne);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Cast* E, C& Cmp) const {
|
|
typename C::CType Ct =
|
|
Cmp.compareIntegers(castOpcode(), E->castOpcode());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
return Cmp.compare(expr(), E->expr());
|
|
}
|
|
|
|
private:
|
|
SExpr* Expr0;
|
|
};
|
|
|
|
class SCFG;
|
|
|
|
/// Phi Node, for code in SSA form.
|
|
/// Each Phi node has an array of possible values that it can take,
|
|
/// depending on where control flow comes from.
|
|
class Phi : public SExpr {
|
|
public:
|
|
using ValArray = SimpleArray<SExpr *>;
|
|
|
|
// In minimal SSA form, all Phi nodes are MultiVal.
|
|
// During conversion to SSA, incomplete Phi nodes may be introduced, which
|
|
// are later determined to be SingleVal, and are thus redundant.
|
|
enum Status {
|
|
PH_MultiVal = 0, // Phi node has multiple distinct values. (Normal)
|
|
PH_SingleVal, // Phi node has one distinct value, and can be eliminated
|
|
PH_Incomplete // Phi node is incomplete
|
|
};
|
|
|
|
Phi() : SExpr(COP_Phi) {}
|
|
Phi(MemRegionRef A, unsigned Nvals) : SExpr(COP_Phi), Values(A, Nvals) {}
|
|
Phi(const Phi &P, ValArray &&Vs) : SExpr(P), Values(std::move(Vs)) {}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Phi; }
|
|
|
|
const ValArray &values() const { return Values; }
|
|
ValArray &values() { return Values; }
|
|
|
|
Status status() const { return static_cast<Status>(Flags); }
|
|
void setStatus(Status s) { Flags = s; }
|
|
|
|
/// Return the clang declaration of the variable for this Phi node, if any.
|
|
const ValueDecl *clangDecl() const { return Cvdecl; }
|
|
|
|
/// Set the clang variable associated with this Phi node.
|
|
void setClangDecl(const ValueDecl *Cvd) { Cvdecl = Cvd; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
typename V::template Container<typename V::R_SExpr>
|
|
Nvs(Vs, Values.size());
|
|
|
|
for (const auto *Val : Values)
|
|
Nvs.push_back( Vs.traverse(Val, Vs.subExprCtx(Ctx)) );
|
|
return Vs.reducePhi(*this, Nvs);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Phi *E, C &Cmp) const {
|
|
// TODO: implement CFG comparisons
|
|
return Cmp.comparePointers(this, E);
|
|
}
|
|
|
|
private:
|
|
ValArray Values;
|
|
const ValueDecl* Cvdecl = nullptr;
|
|
};
|
|
|
|
/// Base class for basic block terminators: Branch, Goto, and Return.
|
|
class Terminator : public SExpr {
|
|
protected:
|
|
Terminator(TIL_Opcode Op) : SExpr(Op) {}
|
|
Terminator(const SExpr &E) : SExpr(E) {}
|
|
|
|
public:
|
|
static bool classof(const SExpr *E) {
|
|
return E->opcode() >= COP_Goto && E->opcode() <= COP_Return;
|
|
}
|
|
|
|
/// Return the list of basic blocks that this terminator can branch to.
|
|
ArrayRef<BasicBlock *> successors();
|
|
|
|
ArrayRef<BasicBlock *> successors() const {
|
|
return const_cast<Terminator*>(this)->successors();
|
|
}
|
|
};
|
|
|
|
/// Jump to another basic block.
|
|
/// A goto instruction is essentially a tail-recursive call into another
|
|
/// block. In addition to the block pointer, it specifies an index into the
|
|
/// phi nodes of that block. The index can be used to retrieve the "arguments"
|
|
/// of the call.
|
|
class Goto : public Terminator {
|
|
public:
|
|
Goto(BasicBlock *B, unsigned I)
|
|
: Terminator(COP_Goto), TargetBlock(B), Index(I) {}
|
|
Goto(const Goto &G, BasicBlock *B, unsigned I)
|
|
: Terminator(COP_Goto), TargetBlock(B), Index(I) {}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Goto; }
|
|
|
|
const BasicBlock *targetBlock() const { return TargetBlock; }
|
|
BasicBlock *targetBlock() { return TargetBlock; }
|
|
|
|
/// Returns the index into the
|
|
unsigned index() const { return Index; }
|
|
|
|
/// Return the list of basic blocks that this terminator can branch to.
|
|
ArrayRef<BasicBlock *> successors() { return TargetBlock; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
BasicBlock *Ntb = Vs.reduceBasicBlockRef(TargetBlock);
|
|
return Vs.reduceGoto(*this, Ntb);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Goto *E, C &Cmp) const {
|
|
// TODO: implement CFG comparisons
|
|
return Cmp.comparePointers(this, E);
|
|
}
|
|
|
|
private:
|
|
BasicBlock *TargetBlock;
|
|
unsigned Index;
|
|
};
|
|
|
|
/// A conditional branch to two other blocks.
|
|
/// Note that unlike Goto, Branch does not have an index. The target blocks
|
|
/// must be child-blocks, and cannot have Phi nodes.
|
|
class Branch : public Terminator {
|
|
public:
|
|
Branch(SExpr *C, BasicBlock *T, BasicBlock *E)
|
|
: Terminator(COP_Branch), Condition(C) {
|
|
Branches[0] = T;
|
|
Branches[1] = E;
|
|
}
|
|
|
|
Branch(const Branch &Br, SExpr *C, BasicBlock *T, BasicBlock *E)
|
|
: Terminator(Br), Condition(C) {
|
|
Branches[0] = T;
|
|
Branches[1] = E;
|
|
}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Branch; }
|
|
|
|
const SExpr *condition() const { return Condition; }
|
|
SExpr *condition() { return Condition; }
|
|
|
|
const BasicBlock *thenBlock() const { return Branches[0]; }
|
|
BasicBlock *thenBlock() { return Branches[0]; }
|
|
|
|
const BasicBlock *elseBlock() const { return Branches[1]; }
|
|
BasicBlock *elseBlock() { return Branches[1]; }
|
|
|
|
/// Return the list of basic blocks that this terminator can branch to.
|
|
ArrayRef<BasicBlock *> successors() { return llvm::ArrayRef(Branches); }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Nc = Vs.traverse(Condition, Vs.subExprCtx(Ctx));
|
|
BasicBlock *Ntb = Vs.reduceBasicBlockRef(Branches[0]);
|
|
BasicBlock *Nte = Vs.reduceBasicBlockRef(Branches[1]);
|
|
return Vs.reduceBranch(*this, Nc, Ntb, Nte);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Branch *E, C &Cmp) const {
|
|
// TODO: implement CFG comparisons
|
|
return Cmp.comparePointers(this, E);
|
|
}
|
|
|
|
private:
|
|
SExpr *Condition;
|
|
BasicBlock *Branches[2];
|
|
};
|
|
|
|
/// Return from the enclosing function, passing the return value to the caller.
|
|
/// Only the exit block should end with a return statement.
|
|
class Return : public Terminator {
|
|
public:
|
|
Return(SExpr* Rval) : Terminator(COP_Return), Retval(Rval) {}
|
|
Return(const Return &R, SExpr* Rval) : Terminator(R), Retval(Rval) {}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Return; }
|
|
|
|
/// Return an empty list.
|
|
ArrayRef<BasicBlock *> successors() { return std::nullopt; }
|
|
|
|
SExpr *returnValue() { return Retval; }
|
|
const SExpr *returnValue() const { return Retval; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Ne = Vs.traverse(Retval, Vs.subExprCtx(Ctx));
|
|
return Vs.reduceReturn(*this, Ne);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Return *E, C &Cmp) const {
|
|
return Cmp.compare(Retval, E->Retval);
|
|
}
|
|
|
|
private:
|
|
SExpr* Retval;
|
|
};
|
|
|
|
inline ArrayRef<BasicBlock*> Terminator::successors() {
|
|
switch (opcode()) {
|
|
case COP_Goto: return cast<Goto>(this)->successors();
|
|
case COP_Branch: return cast<Branch>(this)->successors();
|
|
case COP_Return: return cast<Return>(this)->successors();
|
|
default:
|
|
return std::nullopt;
|
|
}
|
|
}
|
|
|
|
/// A basic block is part of an SCFG. It can be treated as a function in
|
|
/// continuation passing style. A block consists of a sequence of phi nodes,
|
|
/// which are "arguments" to the function, followed by a sequence of
|
|
/// instructions. It ends with a Terminator, which is a Branch or Goto to
|
|
/// another basic block in the same SCFG.
|
|
class BasicBlock : public SExpr {
|
|
public:
|
|
using InstrArray = SimpleArray<SExpr *>;
|
|
using BlockArray = SimpleArray<BasicBlock *>;
|
|
|
|
// TopologyNodes are used to overlay tree structures on top of the CFG,
|
|
// such as dominator and postdominator trees. Each block is assigned an
|
|
// ID in the tree according to a depth-first search. Tree traversals are
|
|
// always up, towards the parents.
|
|
struct TopologyNode {
|
|
int NodeID = 0;
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|
|
|
// Includes this node, so must be > 1.
|
|
int SizeOfSubTree = 0;
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|
|
|
// Pointer to parent.
|
|
BasicBlock *Parent = nullptr;
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|
|
|
TopologyNode() = default;
|
|
|
|
bool isParentOf(const TopologyNode& OtherNode) {
|
|
return OtherNode.NodeID > NodeID &&
|
|
OtherNode.NodeID < NodeID + SizeOfSubTree;
|
|
}
|
|
|
|
bool isParentOfOrEqual(const TopologyNode& OtherNode) {
|
|
return OtherNode.NodeID >= NodeID &&
|
|
OtherNode.NodeID < NodeID + SizeOfSubTree;
|
|
}
|
|
};
|
|
|
|
explicit BasicBlock(MemRegionRef A)
|
|
: SExpr(COP_BasicBlock), Arena(A), BlockID(0), Visited(false) {}
|
|
BasicBlock(BasicBlock &B, MemRegionRef A, InstrArray &&As, InstrArray &&Is,
|
|
Terminator *T)
|
|
: SExpr(COP_BasicBlock), Arena(A), BlockID(0), Visited(false),
|
|
Args(std::move(As)), Instrs(std::move(Is)), TermInstr(T) {}
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|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_BasicBlock; }
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|
|
|
/// Returns the block ID. Every block has a unique ID in the CFG.
|
|
int blockID() const { return BlockID; }
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|
|
|
/// Returns the number of predecessors.
|
|
size_t numPredecessors() const { return Predecessors.size(); }
|
|
size_t numSuccessors() const { return successors().size(); }
|
|
|
|
const SCFG* cfg() const { return CFGPtr; }
|
|
SCFG* cfg() { return CFGPtr; }
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|
|
|
const BasicBlock *parent() const { return DominatorNode.Parent; }
|
|
BasicBlock *parent() { return DominatorNode.Parent; }
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|
|
|
const InstrArray &arguments() const { return Args; }
|
|
InstrArray &arguments() { return Args; }
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|
|
|
InstrArray &instructions() { return Instrs; }
|
|
const InstrArray &instructions() const { return Instrs; }
|
|
|
|
/// Returns a list of predecessors.
|
|
/// The order of predecessors in the list is important; each phi node has
|
|
/// exactly one argument for each precessor, in the same order.
|
|
BlockArray &predecessors() { return Predecessors; }
|
|
const BlockArray &predecessors() const { return Predecessors; }
|
|
|
|
ArrayRef<BasicBlock*> successors() { return TermInstr->successors(); }
|
|
ArrayRef<BasicBlock*> successors() const { return TermInstr->successors(); }
|
|
|
|
const Terminator *terminator() const { return TermInstr; }
|
|
Terminator *terminator() { return TermInstr; }
|
|
|
|
void setTerminator(Terminator *E) { TermInstr = E; }
|
|
|
|
bool Dominates(const BasicBlock &Other) {
|
|
return DominatorNode.isParentOfOrEqual(Other.DominatorNode);
|
|
}
|
|
|
|
bool PostDominates(const BasicBlock &Other) {
|
|
return PostDominatorNode.isParentOfOrEqual(Other.PostDominatorNode);
|
|
}
|
|
|
|
/// Add a new argument.
|
|
void addArgument(Phi *V) {
|
|
Args.reserveCheck(1, Arena);
|
|
Args.push_back(V);
|
|
}
|
|
|
|
/// Add a new instruction.
|
|
void addInstruction(SExpr *V) {
|
|
Instrs.reserveCheck(1, Arena);
|
|
Instrs.push_back(V);
|
|
}
|
|
|
|
// Add a new predecessor, and return the phi-node index for it.
|
|
// Will add an argument to all phi-nodes, initialized to nullptr.
|
|
unsigned addPredecessor(BasicBlock *Pred);
|
|
|
|
// Reserve space for Nargs arguments.
|
|
void reserveArguments(unsigned Nargs) { Args.reserve(Nargs, Arena); }
|
|
|
|
// Reserve space for Nins instructions.
|
|
void reserveInstructions(unsigned Nins) { Instrs.reserve(Nins, Arena); }
|
|
|
|
// Reserve space for NumPreds predecessors, including space in phi nodes.
|
|
void reservePredecessors(unsigned NumPreds);
|
|
|
|
/// Return the index of BB, or Predecessors.size if BB is not a predecessor.
|
|
unsigned findPredecessorIndex(const BasicBlock *BB) const {
|
|
auto I = llvm::find(Predecessors, BB);
|
|
return std::distance(Predecessors.cbegin(), I);
|
|
}
|
|
|
|
template <class V>
|
|
typename V::R_BasicBlock traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
typename V::template Container<SExpr*> Nas(Vs, Args.size());
|
|
typename V::template Container<SExpr*> Nis(Vs, Instrs.size());
|
|
|
|
// Entering the basic block should do any scope initialization.
|
|
Vs.enterBasicBlock(*this);
|
|
|
|
for (const auto *E : Args) {
|
|
auto Ne = Vs.traverse(E, Vs.subExprCtx(Ctx));
|
|
Nas.push_back(Ne);
|
|
}
|
|
for (const auto *E : Instrs) {
|
|
auto Ne = Vs.traverse(E, Vs.subExprCtx(Ctx));
|
|
Nis.push_back(Ne);
|
|
}
|
|
auto Nt = Vs.traverse(TermInstr, Ctx);
|
|
|
|
// Exiting the basic block should handle any scope cleanup.
|
|
Vs.exitBasicBlock(*this);
|
|
|
|
return Vs.reduceBasicBlock(*this, Nas, Nis, Nt);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const BasicBlock *E, C &Cmp) const {
|
|
// TODO: implement CFG comparisons
|
|
return Cmp.comparePointers(this, E);
|
|
}
|
|
|
|
private:
|
|
friend class SCFG;
|
|
|
|
// assign unique ids to all instructions
|
|
unsigned renumberInstrs(unsigned id);
|
|
|
|
unsigned topologicalSort(SimpleArray<BasicBlock *> &Blocks, unsigned ID);
|
|
unsigned topologicalFinalSort(SimpleArray<BasicBlock *> &Blocks, unsigned ID);
|
|
void computeDominator();
|
|
void computePostDominator();
|
|
|
|
// The arena used to allocate this block.
|
|
MemRegionRef Arena;
|
|
|
|
// The CFG that contains this block.
|
|
SCFG *CFGPtr = nullptr;
|
|
|
|
// Unique ID for this BB in the containing CFG. IDs are in topological order.
|
|
unsigned BlockID : 31;
|
|
|
|
// Bit to determine if a block has been visited during a traversal.
|
|
bool Visited : 1;
|
|
|
|
// Predecessor blocks in the CFG.
|
|
BlockArray Predecessors;
|
|
|
|
// Phi nodes. One argument per predecessor.
|
|
InstrArray Args;
|
|
|
|
// Instructions.
|
|
InstrArray Instrs;
|
|
|
|
// Terminating instruction.
|
|
Terminator *TermInstr = nullptr;
|
|
|
|
// The dominator tree.
|
|
TopologyNode DominatorNode;
|
|
|
|
// The post-dominator tree.
|
|
TopologyNode PostDominatorNode;
|
|
};
|
|
|
|
/// An SCFG is a control-flow graph. It consists of a set of basic blocks,
|
|
/// each of which terminates in a branch to another basic block. There is one
|
|
/// entry point, and one exit point.
|
|
class SCFG : public SExpr {
|
|
public:
|
|
using BlockArray = SimpleArray<BasicBlock *>;
|
|
using iterator = BlockArray::iterator;
|
|
using const_iterator = BlockArray::const_iterator;
|
|
|
|
SCFG(MemRegionRef A, unsigned Nblocks)
|
|
: SExpr(COP_SCFG), Arena(A), Blocks(A, Nblocks) {
|
|
Entry = new (A) BasicBlock(A);
|
|
Exit = new (A) BasicBlock(A);
|
|
auto *V = new (A) Phi();
|
|
Exit->addArgument(V);
|
|
Exit->setTerminator(new (A) Return(V));
|
|
add(Entry);
|
|
add(Exit);
|
|
}
|
|
|
|
SCFG(const SCFG &Cfg, BlockArray &&Ba) // steals memory from Ba
|
|
: SExpr(COP_SCFG), Arena(Cfg.Arena), Blocks(std::move(Ba)) {
|
|
// TODO: set entry and exit!
|
|
}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_SCFG; }
|
|
|
|
/// Return true if this CFG is valid.
|
|
bool valid() const { return Entry && Exit && Blocks.size() > 0; }
|
|
|
|
/// Return true if this CFG has been normalized.
|
|
/// After normalization, blocks are in topological order, and block and
|
|
/// instruction IDs have been assigned.
|
|
bool normal() const { return Normal; }
|
|
|
|
iterator begin() { return Blocks.begin(); }
|
|
iterator end() { return Blocks.end(); }
|
|
|
|
const_iterator begin() const { return cbegin(); }
|
|
const_iterator end() const { return cend(); }
|
|
|
|
const_iterator cbegin() const { return Blocks.cbegin(); }
|
|
const_iterator cend() const { return Blocks.cend(); }
|
|
|
|
const BasicBlock *entry() const { return Entry; }
|
|
BasicBlock *entry() { return Entry; }
|
|
const BasicBlock *exit() const { return Exit; }
|
|
BasicBlock *exit() { return Exit; }
|
|
|
|
/// Return the number of blocks in the CFG.
|
|
/// Block::blockID() will return a number less than numBlocks();
|
|
size_t numBlocks() const { return Blocks.size(); }
|
|
|
|
/// Return the total number of instructions in the CFG.
|
|
/// This is useful for building instruction side-tables;
|
|
/// A call to SExpr::id() will return a number less than numInstructions().
|
|
unsigned numInstructions() { return NumInstructions; }
|
|
|
|
inline void add(BasicBlock *BB) {
|
|
assert(BB->CFGPtr == nullptr);
|
|
BB->CFGPtr = this;
|
|
Blocks.reserveCheck(1, Arena);
|
|
Blocks.push_back(BB);
|
|
}
|
|
|
|
void setEntry(BasicBlock *BB) { Entry = BB; }
|
|
void setExit(BasicBlock *BB) { Exit = BB; }
|
|
|
|
void computeNormalForm();
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
Vs.enterCFG(*this);
|
|
typename V::template Container<BasicBlock *> Bbs(Vs, Blocks.size());
|
|
|
|
for (const auto *B : Blocks) {
|
|
Bbs.push_back( B->traverse(Vs, Vs.subExprCtx(Ctx)) );
|
|
}
|
|
Vs.exitCFG(*this);
|
|
return Vs.reduceSCFG(*this, Bbs);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const SCFG *E, C &Cmp) const {
|
|
// TODO: implement CFG comparisons
|
|
return Cmp.comparePointers(this, E);
|
|
}
|
|
|
|
private:
|
|
// assign unique ids to all instructions
|
|
void renumberInstrs();
|
|
|
|
MemRegionRef Arena;
|
|
BlockArray Blocks;
|
|
BasicBlock *Entry = nullptr;
|
|
BasicBlock *Exit = nullptr;
|
|
unsigned NumInstructions = 0;
|
|
bool Normal = false;
|
|
};
|
|
|
|
/// An identifier, e.g. 'foo' or 'x'.
|
|
/// This is a pseduo-term; it will be lowered to a variable or projection.
|
|
class Identifier : public SExpr {
|
|
public:
|
|
Identifier(StringRef Id): SExpr(COP_Identifier), Name(Id) {}
|
|
Identifier(const Identifier &) = default;
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Identifier; }
|
|
|
|
StringRef name() const { return Name; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
return Vs.reduceIdentifier(*this);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Identifier* E, C& Cmp) const {
|
|
return Cmp.compareStrings(name(), E->name());
|
|
}
|
|
|
|
private:
|
|
StringRef Name;
|
|
};
|
|
|
|
/// An if-then-else expression.
|
|
/// This is a pseduo-term; it will be lowered to a branch in a CFG.
|
|
class IfThenElse : public SExpr {
|
|
public:
|
|
IfThenElse(SExpr *C, SExpr *T, SExpr *E)
|
|
: SExpr(COP_IfThenElse), Condition(C), ThenExpr(T), ElseExpr(E) {}
|
|
IfThenElse(const IfThenElse &I, SExpr *C, SExpr *T, SExpr *E)
|
|
: SExpr(I), Condition(C), ThenExpr(T), ElseExpr(E) {}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_IfThenElse; }
|
|
|
|
SExpr *condition() { return Condition; } // Address to store to
|
|
const SExpr *condition() const { return Condition; }
|
|
|
|
SExpr *thenExpr() { return ThenExpr; } // Value to store
|
|
const SExpr *thenExpr() const { return ThenExpr; }
|
|
|
|
SExpr *elseExpr() { return ElseExpr; } // Value to store
|
|
const SExpr *elseExpr() const { return ElseExpr; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
auto Nc = Vs.traverse(Condition, Vs.subExprCtx(Ctx));
|
|
auto Nt = Vs.traverse(ThenExpr, Vs.subExprCtx(Ctx));
|
|
auto Ne = Vs.traverse(ElseExpr, Vs.subExprCtx(Ctx));
|
|
return Vs.reduceIfThenElse(*this, Nc, Nt, Ne);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const IfThenElse* E, C& Cmp) const {
|
|
typename C::CType Ct = Cmp.compare(condition(), E->condition());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
Ct = Cmp.compare(thenExpr(), E->thenExpr());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
return Cmp.compare(elseExpr(), E->elseExpr());
|
|
}
|
|
|
|
private:
|
|
SExpr* Condition;
|
|
SExpr* ThenExpr;
|
|
SExpr* ElseExpr;
|
|
};
|
|
|
|
/// A let-expression, e.g. let x=t; u.
|
|
/// This is a pseduo-term; it will be lowered to instructions in a CFG.
|
|
class Let : public SExpr {
|
|
public:
|
|
Let(Variable *Vd, SExpr *Bd) : SExpr(COP_Let), VarDecl(Vd), Body(Bd) {
|
|
Vd->setKind(Variable::VK_Let);
|
|
}
|
|
|
|
Let(const Let &L, Variable *Vd, SExpr *Bd) : SExpr(L), VarDecl(Vd), Body(Bd) {
|
|
Vd->setKind(Variable::VK_Let);
|
|
}
|
|
|
|
static bool classof(const SExpr *E) { return E->opcode() == COP_Let; }
|
|
|
|
Variable *variableDecl() { return VarDecl; }
|
|
const Variable *variableDecl() const { return VarDecl; }
|
|
|
|
SExpr *body() { return Body; }
|
|
const SExpr *body() const { return Body; }
|
|
|
|
template <class V>
|
|
typename V::R_SExpr traverse(V &Vs, typename V::R_Ctx Ctx) {
|
|
// This is a variable declaration, so traverse the definition.
|
|
auto E0 = Vs.traverse(VarDecl->Definition, Vs.subExprCtx(Ctx));
|
|
// Tell the rewriter to enter the scope of the let variable.
|
|
Variable *Nvd = Vs.enterScope(*VarDecl, E0);
|
|
auto E1 = Vs.traverse(Body, Ctx);
|
|
Vs.exitScope(*VarDecl);
|
|
return Vs.reduceLet(*this, Nvd, E1);
|
|
}
|
|
|
|
template <class C>
|
|
typename C::CType compare(const Let* E, C& Cmp) const {
|
|
typename C::CType Ct =
|
|
Cmp.compare(VarDecl->definition(), E->VarDecl->definition());
|
|
if (Cmp.notTrue(Ct))
|
|
return Ct;
|
|
Cmp.enterScope(variableDecl(), E->variableDecl());
|
|
Ct = Cmp.compare(body(), E->body());
|
|
Cmp.leaveScope();
|
|
return Ct;
|
|
}
|
|
|
|
private:
|
|
Variable *VarDecl;
|
|
SExpr* Body;
|
|
};
|
|
|
|
const SExpr *getCanonicalVal(const SExpr *E);
|
|
SExpr* simplifyToCanonicalVal(SExpr *E);
|
|
void simplifyIncompleteArg(til::Phi *Ph);
|
|
|
|
} // namespace til
|
|
} // namespace threadSafety
|
|
|
|
} // namespace clang
|
|
|
|
#endif // LLVM_CLANG_ANALYSIS_ANALYSES_THREADSAFETYTIL_H
|