fca796ae03
This change cleans up unused/redundant/obsolete/duplicate code around IL instructions and related classes. TEST=ci (refactoring) Change-Id: Ie4dec299ca9ffd57ac68978bbde4e0b34e891734 Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/235281 Reviewed-by: Slava Egorov <vegorov@google.com> Commit-Queue: Alexander Markov <alexmarkov@google.com>
720 lines
23 KiB
C++
720 lines
23 KiB
C++
// Copyright (c) 2014, the Dart project authors. Please see the AUTHORS file
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// for details. All rights reserved. Use of this source code is governed by a
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// BSD-style license that can be found in the LICENSE file.
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#ifndef RUNTIME_VM_COMPILER_BACKEND_RANGE_ANALYSIS_H_
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#define RUNTIME_VM_COMPILER_BACKEND_RANGE_ANALYSIS_H_
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#if defined(DART_PRECOMPILED_RUNTIME)
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#error "AOT runtime should not use compiler sources (including header files)"
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#endif // defined(DART_PRECOMPILED_RUNTIME)
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#include "vm/compiler/backend/flow_graph.h"
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#include "vm/compiler/backend/il.h"
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namespace dart {
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class RangeBoundary : public ValueObject {
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public:
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#define FOR_EACH_RANGE_BOUNDARY_KIND(V) \
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V(Unknown) \
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V(NegativeInfinity) \
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V(PositiveInfinity) \
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V(Symbol) \
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V(Constant)
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#define KIND_DEFN(name) k##name,
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enum Kind { FOR_EACH_RANGE_BOUNDARY_KIND(KIND_DEFN) };
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#undef KIND_DEFN
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static const char* KindToCString(Kind kind);
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static bool ParseKind(const char* str, Kind* out);
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enum RangeSize {
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kRangeBoundarySmi,
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kRangeBoundaryInt16,
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kRangeBoundaryInt32,
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kRangeBoundaryInt64,
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};
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RangeBoundary() : kind_(kUnknown), value_(0), offset_(0) {}
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RangeBoundary(const RangeBoundary& other)
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: ValueObject(),
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kind_(other.kind_),
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value_(other.value_),
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offset_(other.offset_) {}
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explicit RangeBoundary(int64_t val)
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: kind_(kConstant), value_(val), offset_(0) {}
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RangeBoundary& operator=(const RangeBoundary& other) {
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kind_ = other.kind_;
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value_ = other.value_;
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offset_ = other.offset_;
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return *this;
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}
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static const int64_t kMin = kMinInt64;
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static const int64_t kMax = kMaxInt64;
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// Construct a RangeBoundary for a constant value.
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static RangeBoundary FromConstant(int64_t val) { return RangeBoundary(val); }
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// Construct a RangeBoundary for -inf.
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static RangeBoundary NegativeInfinity() {
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return RangeBoundary(kNegativeInfinity, 0, 0);
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}
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// Construct a RangeBoundary for +inf.
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static RangeBoundary PositiveInfinity() {
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return RangeBoundary(kPositiveInfinity, 0, 0);
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}
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// Construct a RangeBoundary from a definition and offset.
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static RangeBoundary FromDefinition(Definition* defn, int64_t offs = 0);
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static bool IsValidOffsetForSymbolicRangeBoundary(int64_t offset) {
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if ((offset > (kMaxInt64 - compiler::target::kSmiMax)) ||
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(offset < (kMinInt64 - compiler::target::kSmiMin))) {
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// Avoid creating symbolic range boundaries which can wrap around.
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return false;
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}
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return true;
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}
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// Construct a RangeBoundary for the constant MinSmi value.
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static RangeBoundary MinSmi() {
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return FromConstant(compiler::target::kSmiMin);
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}
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// Construct a RangeBoundary for the constant MaxSmi value.
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static RangeBoundary MaxSmi() {
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return FromConstant(compiler::target::kSmiMax);
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}
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// Construct a RangeBoundary for the constant kMin value.
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static RangeBoundary MinConstant(RangeSize size) {
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switch (size) {
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case kRangeBoundarySmi:
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return FromConstant(compiler::target::kSmiMin);
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case kRangeBoundaryInt16:
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return FromConstant(kMinInt16);
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case kRangeBoundaryInt32:
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return FromConstant(kMinInt32);
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case kRangeBoundaryInt64:
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return FromConstant(kMinInt64);
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}
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UNREACHABLE();
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return FromConstant(kMinInt64);
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}
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static RangeBoundary MaxConstant(RangeSize size) {
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switch (size) {
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case kRangeBoundarySmi:
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return FromConstant(compiler::target::kSmiMax);
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case kRangeBoundaryInt16:
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return FromConstant(kMaxInt16);
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case kRangeBoundaryInt32:
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return FromConstant(kMaxInt32);
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case kRangeBoundaryInt64:
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return FromConstant(kMaxInt64);
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}
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UNREACHABLE();
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return FromConstant(kMaxInt64);
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}
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// Given two boundaries a and b, select one of them as c so that
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//
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// inf {[a, ...) ^ [b, ...)} >= inf {c}
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//
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static RangeBoundary IntersectionMin(RangeBoundary a, RangeBoundary b);
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// Given two boundaries a and b, select one of them as c so that
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//
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// sup {(..., a] ^ (..., b]} <= sup {c}
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//
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static RangeBoundary IntersectionMax(RangeBoundary a, RangeBoundary b);
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// Given two boundaries a and b compute boundary c such that
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//
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// inf {[a, ...) U [b, ...)} >= inf {c}
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//
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// Try to select c such that it is as close to inf {[a, ...) U [b, ...)}
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// as possible.
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static RangeBoundary JoinMin(RangeBoundary a,
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RangeBoundary b,
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RangeBoundary::RangeSize size);
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// Given two boundaries a and b compute boundary c such that
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//
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// sup {(..., a] U (..., b]} <= sup {c}
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//
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// Try to select c such that it is as close to sup {(..., a] U (..., b]}
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// as possible.
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static RangeBoundary JoinMax(RangeBoundary a,
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RangeBoundary b,
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RangeBoundary::RangeSize size);
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// Returns true when this is a constant that is outside of Smi range.
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bool OverflowedSmi() const {
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return (IsConstant() && !compiler::target::IsSmi(ConstantValue())) ||
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IsInfinity();
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}
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bool Overflowed(RangeBoundary::RangeSize size) const {
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ASSERT(IsConstantOrInfinity());
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return !Equals(Clamp(size));
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}
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// Returns true if this outside mint range.
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bool OverflowedMint() const { return IsInfinity(); }
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// -/+ infinity are clamped to MinConstant/MaxConstant of the given type.
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RangeBoundary Clamp(RangeSize size) const {
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if (IsNegativeInfinity()) {
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return RangeBoundary::MinConstant(size);
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}
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if (IsPositiveInfinity()) {
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return RangeBoundary::MaxConstant(size);
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}
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if (IsConstant()) {
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const RangeBoundary range_min = RangeBoundary::MinConstant(size);
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const RangeBoundary range_max = RangeBoundary::MaxConstant(size);
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if (ConstantValue() <= range_min.ConstantValue()) {
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return range_min;
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}
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if (ConstantValue() >= range_max.ConstantValue()) {
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return range_max;
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}
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}
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// If this range is a symbolic range, we do not clamp it.
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// This could lead to some imprecision later on.
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return *this;
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}
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bool IsMinimumOrBelow(RangeSize size) const {
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return IsNegativeInfinity() ||
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(IsConstant() && (ConstantValue() <=
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RangeBoundary::MinConstant(size).ConstantValue()));
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}
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bool IsMaximumOrAbove(RangeSize size) const {
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return IsPositiveInfinity() ||
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(IsConstant() && (ConstantValue() >=
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RangeBoundary::MaxConstant(size).ConstantValue()));
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}
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intptr_t kind() const { return kind_; }
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// Kind tests.
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bool IsUnknown() const { return kind_ == kUnknown; }
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bool IsConstant() const { return kind_ == kConstant; }
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bool IsSymbol() const { return kind_ == kSymbol; }
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bool IsNegativeInfinity() const { return kind_ == kNegativeInfinity; }
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bool IsPositiveInfinity() const { return kind_ == kPositiveInfinity; }
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bool IsInfinity() const {
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return IsNegativeInfinity() || IsPositiveInfinity();
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}
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bool IsConstantOrInfinity() const { return IsConstant() || IsInfinity(); }
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// Returns the value of a kConstant RangeBoundary.
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int64_t ConstantValue() const;
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// Returns the Definition associated with a kSymbol RangeBoundary.
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Definition* symbol() const {
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ASSERT(IsSymbol());
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return reinterpret_cast<Definition*>(value_);
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}
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// Offset from symbol.
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int64_t offset() const { return offset_; }
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// Computes the LowerBound of this. Three cases:
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// IsInfinity() -> NegativeInfinity().
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// IsConstant() -> value().
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// IsSymbol() -> lower bound computed from definition + offset.
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RangeBoundary LowerBound() const;
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// Computes the UpperBound of this. Three cases:
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// IsInfinity() -> PositiveInfinity().
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// IsConstant() -> value().
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// IsSymbol() -> upper bound computed from definition + offset.
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RangeBoundary UpperBound() const;
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void PrintTo(BaseTextBuffer* f) const;
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const char* ToCString() const;
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static RangeBoundary Add(const RangeBoundary& a,
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const RangeBoundary& b,
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const RangeBoundary& overflow);
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static RangeBoundary Sub(const RangeBoundary& a,
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const RangeBoundary& b,
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const RangeBoundary& overflow);
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static RangeBoundary Shl(const RangeBoundary& value_boundary,
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int64_t shift_count,
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const RangeBoundary& overflow);
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static RangeBoundary Shr(const RangeBoundary& value_boundary,
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int64_t shift_count) {
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ASSERT(value_boundary.IsConstant());
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ASSERT(shift_count >= 0);
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const int64_t value = static_cast<int64_t>(value_boundary.ConstantValue());
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const int64_t result = (shift_count <= 63)
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? (value >> shift_count)
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: (value >= 0 ? 0 : -1); // Dart semantics
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return RangeBoundary(result);
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}
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// Attempts to calculate a + b when:
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// a is a symbol and b is a constant OR
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// a is a constant and b is a symbol
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// returns true if it succeeds, output is in result.
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static bool SymbolicAdd(const RangeBoundary& a,
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const RangeBoundary& b,
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RangeBoundary* result);
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// Attempts to calculate a - b when:
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// a is a symbol and b is a constant
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// returns true if it succeeds, output is in result.
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static bool SymbolicSub(const RangeBoundary& a,
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const RangeBoundary& b,
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RangeBoundary* result);
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bool Equals(const RangeBoundary& other) const;
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int64_t UpperBound(RangeSize size) const {
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return UpperBound().Clamp(size).ConstantValue();
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}
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int64_t LowerBound(RangeSize size) const {
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return LowerBound().Clamp(size).ConstantValue();
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}
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int64_t SmiUpperBound() const { return UpperBound(kRangeBoundarySmi); }
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int64_t SmiLowerBound() const { return LowerBound(kRangeBoundarySmi); }
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private:
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RangeBoundary(Kind kind, int64_t value, int64_t offset)
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: kind_(kind), value_(value), offset_(offset) {}
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Kind kind_;
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int64_t value_;
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int64_t offset_;
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};
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class Range : public ZoneAllocated {
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public:
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Range() : min_(), max_() {}
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Range(RangeBoundary min, RangeBoundary max) : min_(min), max_(max) {
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ASSERT(min_.IsUnknown() == max_.IsUnknown());
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if (min_.IsInfinity() || max_.IsInfinity()) {
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// Value can wrap around, so fall back to the full 64-bit range.
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SetInt64Range();
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}
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}
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Range(const Range& other)
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: ZoneAllocated(), min_(other.min_), max_(other.max_) {}
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Range& operator=(const Range& other) {
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min_ = other.min_;
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max_ = other.max_;
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return *this;
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}
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static bool IsUnknown(const Range* other) {
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if (other == NULL) {
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return true;
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}
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return other->min().IsUnknown();
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}
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static Range Full(RangeBoundary::RangeSize size) {
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return Range(RangeBoundary::MinConstant(size),
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RangeBoundary::MaxConstant(size));
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}
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void PrintTo(BaseTextBuffer* f) const;
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static const char* ToCString(const Range* range);
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bool Equals(const Range* other) {
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ASSERT(min_.IsUnknown() == max_.IsUnknown());
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if (other == NULL) {
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return min_.IsUnknown();
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}
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return min_.Equals(other->min_) && max_.Equals(other->max_);
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}
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const RangeBoundary& min() const { return min_; }
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const RangeBoundary& max() const { return max_; }
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void set_min(const RangeBoundary& value) {
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min_ = value;
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if (min_.IsInfinity()) {
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// Value can wrap around, so fall back to the full 64-bit range.
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SetInt64Range();
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}
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}
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void set_max(const RangeBoundary& value) {
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max_ = value;
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if (max_.IsInfinity()) {
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// Value can wrap around, so fall back to the full 64-bit range.
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SetInt64Range();
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}
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}
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static RangeBoundary ConstantMinSmi(const Range* range) {
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return ConstantMin(range, RangeBoundary::kRangeBoundarySmi);
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}
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static RangeBoundary ConstantMaxSmi(const Range* range) {
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return ConstantMax(range, RangeBoundary::kRangeBoundarySmi);
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}
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static RangeBoundary ConstantMin(const Range* range) {
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return ConstantMin(range, RangeBoundary::kRangeBoundaryInt64);
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}
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static RangeBoundary ConstantMax(const Range* range) {
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return ConstantMax(range, RangeBoundary::kRangeBoundaryInt64);
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}
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static RangeBoundary ConstantMin(const Range* range,
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RangeBoundary::RangeSize size) {
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if (range == NULL) {
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return RangeBoundary::MinConstant(size);
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}
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return range->min().LowerBound().Clamp(size);
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}
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static RangeBoundary ConstantMax(const Range* range,
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RangeBoundary::RangeSize size) {
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if (range == NULL) {
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return RangeBoundary::MaxConstant(size);
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}
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return range->max().UpperBound().Clamp(size);
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}
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// [0, +inf]
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bool IsPositive() const;
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// [-inf, -1]
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bool IsNegative() const;
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// [-inf, val].
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bool OnlyLessThanOrEqualTo(int64_t val) const;
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// [val, +inf].
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bool OnlyGreaterThanOrEqualTo(int64_t val) const;
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// Inclusive.
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bool IsWithin(int64_t min_int, int64_t max_int) const;
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// Inclusive.
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bool Overlaps(int64_t min_int, int64_t max_int) const;
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bool IsUnsatisfiable() const;
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bool IsFinite() const { return !min_.IsInfinity() && !max_.IsInfinity(); }
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Range Intersect(const Range* other) const {
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return Range(RangeBoundary::IntersectionMin(min(), other->min()),
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RangeBoundary::IntersectionMax(max(), other->max()));
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}
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bool Fits(RangeBoundary::RangeSize size) const {
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return !min().LowerBound().Overflowed(size) &&
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!max().UpperBound().Overflowed(size);
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}
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// Returns true if this range fits without truncation into
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// the given representation.
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static bool Fits(Range* range, Representation rep) {
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if (range == nullptr) return false;
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switch (rep) {
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case kUnboxedInt64:
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return true;
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case kUnboxedInt32:
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return range->Fits(RangeBoundary::kRangeBoundaryInt32);
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case kUnboxedUint32:
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return range->IsWithin(0, kMaxUint32);
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default:
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break;
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}
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return false;
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}
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// Clamp this to be within size.
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void Clamp(RangeBoundary::RangeSize size);
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// Clamp this to be within size and eliminate symbols.
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void ClampToConstant(RangeBoundary::RangeSize size);
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static void Add(const Range* left_range,
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const Range* right_range,
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RangeBoundary* min,
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RangeBoundary* max,
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Definition* left_defn);
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static void Sub(const Range* left_range,
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const Range* right_range,
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RangeBoundary* min,
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RangeBoundary* max,
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Definition* left_defn);
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static void Mul(const Range* left_range,
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const Range* right_range,
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RangeBoundary* min,
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RangeBoundary* max);
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static void TruncDiv(const Range* left_range,
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const Range* right_range,
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RangeBoundary* min,
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RangeBoundary* max);
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static void Mod(const Range* right_range,
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RangeBoundary* min,
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RangeBoundary* max);
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static void Shr(const Range* left_range,
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const Range* right_range,
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RangeBoundary* min,
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RangeBoundary* max);
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static void Ushr(const Range* left_range,
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const Range* right_range,
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RangeBoundary* min,
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RangeBoundary* max);
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static void Shl(const Range* left_range,
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const Range* right_range,
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RangeBoundary* min,
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RangeBoundary* max);
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static void And(const Range* left_range,
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const Range* right_range,
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RangeBoundary* min,
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RangeBoundary* max);
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static void BitwiseOp(const Range* left_range,
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const Range* right_range,
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RangeBoundary* min,
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RangeBoundary* max);
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// Both the a and b ranges are >= 0.
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static bool OnlyPositiveOrZero(const Range& a, const Range& b);
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// Both the a and b ranges are <= 0.
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static bool OnlyNegativeOrZero(const Range& a, const Range& b);
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// Return the maximum absolute value included in range.
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static int64_t ConstantAbsMax(const Range* range);
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// Return the minimum absolute value included in range.
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static int64_t ConstantAbsMin(const Range* range);
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static void BinaryOp(const Token::Kind op,
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const Range* left_range,
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const Range* right_range,
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Definition* left_defn,
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Range* result);
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private:
|
|
RangeBoundary min_;
|
|
RangeBoundary max_;
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|
|
|
void SetInt64Range() {
|
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min_ = RangeBoundary::MinConstant(RangeBoundary::kRangeBoundaryInt64);
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|
max_ = RangeBoundary::MaxConstant(RangeBoundary::kRangeBoundaryInt64);
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}
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|
};
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|
|
|
class RangeUtils : public AllStatic {
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|
public:
|
|
static bool Fits(Range* range, RangeBoundary::RangeSize size) {
|
|
return !Range::IsUnknown(range) && range->Fits(size);
|
|
}
|
|
|
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static bool IsWithin(Range* range, int64_t min, int64_t max) {
|
|
return !Range::IsUnknown(range) && range->IsWithin(min, max);
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|
}
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|
|
|
static bool IsPositive(Range* range) {
|
|
return !Range::IsUnknown(range) && range->IsPositive();
|
|
}
|
|
static bool IsNegative(Range* range) {
|
|
return !Range::IsUnknown(range) && range->IsNegative();
|
|
}
|
|
|
|
static bool Overlaps(Range* range, intptr_t min, intptr_t max) {
|
|
return Range::IsUnknown(range) || range->Overlaps(min, max);
|
|
}
|
|
|
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static bool CanBeZero(Range* range) { return Overlaps(range, 0, 0); }
|
|
|
|
static bool OnlyLessThanOrEqualTo(Range* range, intptr_t value) {
|
|
return !Range::IsUnknown(range) && range->OnlyLessThanOrEqualTo(value);
|
|
}
|
|
};
|
|
|
|
// Range analysis for integer values.
|
|
class RangeAnalysis : public ValueObject {
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|
public:
|
|
explicit RangeAnalysis(FlowGraph* flow_graph)
|
|
: flow_graph_(flow_graph),
|
|
smi_range_(Range::Full(RangeBoundary::kRangeBoundarySmi)),
|
|
int64_range_(Range::Full(RangeBoundary::kRangeBoundaryInt64)) {}
|
|
|
|
// Infer ranges for all values and remove overflow checks from binary smi
|
|
// operations when proven redundant.
|
|
void Analyze();
|
|
|
|
// Helper that should be used to access ranges of inputs during range
|
|
// inference.
|
|
// Returns meaningful results for uses of non-smi/non-int definitions that
|
|
// have smi/int as a reaching type.
|
|
const Range* GetSmiRange(Value* value) const;
|
|
const Range* GetIntRange(Value* value) const;
|
|
|
|
static bool IsIntegerDefinition(Definition* defn) {
|
|
return defn->Type()->IsInt();
|
|
}
|
|
|
|
void AssignRangesRecursively(Definition* defn);
|
|
|
|
private:
|
|
enum JoinOperator { NONE, WIDEN, NARROW };
|
|
static char OpPrefix(JoinOperator op);
|
|
|
|
// Collect all integer values (smi or int), all 64-bit binary
|
|
// and shift operations, and all check bounds.
|
|
void CollectValues();
|
|
|
|
// Iterate over smi values and constrain them at branch successors.
|
|
// Additionally constraint values after CheckSmi instructions.
|
|
void InsertConstraints();
|
|
|
|
// Iterate over uses of the given definition and discover branches that
|
|
// constrain it. Insert appropriate Constraint instructions at true
|
|
// and false successor and rename all dominated uses to refer to a
|
|
// Constraint instead of this definition.
|
|
void InsertConstraintsFor(Definition* defn);
|
|
|
|
// Create a constraint for defn, insert it after given instruction and
|
|
// rename all uses that are dominated by it.
|
|
ConstraintInstr* InsertConstraintFor(Value* use,
|
|
Definition* defn,
|
|
Range* constraint,
|
|
Instruction* after);
|
|
|
|
bool ConstrainValueAfterBranch(Value* use, Definition* defn);
|
|
void ConstrainValueAfterCheckBound(Value* use,
|
|
CheckBoundBase* check,
|
|
Definition* defn);
|
|
|
|
// Infer ranges for integer (smi or mint) definitions.
|
|
void InferRanges();
|
|
|
|
// Collect integer definition in the reverse postorder.
|
|
void CollectDefinitions(BitVector* set);
|
|
|
|
// Recompute ranges of all definitions until they stop changing.
|
|
// Apply the given JoinOperator when computing Phi ranges.
|
|
void Iterate(JoinOperator op, intptr_t max_iterations);
|
|
bool InferRange(JoinOperator op, Definition* defn, intptr_t iteration);
|
|
|
|
// Based on computed ranges find and eliminate redundant CheckArrayBound
|
|
// instructions.
|
|
void EliminateRedundantBoundsChecks();
|
|
|
|
// Find unsatisfiable constraints and mark corresponding blocks unreachable.
|
|
void MarkUnreachableBlocks();
|
|
|
|
// Convert mint operations that stay within int32 range into Int32 operations.
|
|
void NarrowMintToInt32();
|
|
|
|
// Remove artificial Constraint instructions and replace them with actual
|
|
// unconstrained definitions.
|
|
void RemoveConstraints();
|
|
|
|
Range* ConstraintSmiRange(Token::Kind op, Definition* boundary);
|
|
|
|
Zone* zone() const { return flow_graph_->zone(); }
|
|
|
|
FlowGraph* flow_graph_;
|
|
|
|
// Range object representing full Smi range.
|
|
Range smi_range_;
|
|
|
|
Range int64_range_;
|
|
|
|
// All values that are known to be smi or mint.
|
|
GrowableArray<Definition*> values_;
|
|
|
|
// All 64-bit binary and shift operations.
|
|
GrowableArray<BinaryInt64OpInstr*> binary_int64_ops_;
|
|
GrowableArray<ShiftIntegerOpInstr*> shift_int64_ops_;
|
|
|
|
// All CheckArrayBound/GenericCheckBound instructions.
|
|
GrowableArray<CheckBoundBase*> bounds_checks_;
|
|
|
|
// All Constraints inserted during InsertConstraints phase. They are treated
|
|
// as smi values.
|
|
GrowableArray<ConstraintInstr*> constraints_;
|
|
|
|
// List of integer (smi or mint) definitions including constraints sorted
|
|
// in the reverse postorder.
|
|
GrowableArray<Definition*> definitions_;
|
|
|
|
DISALLOW_COPY_AND_ASSIGN(RangeAnalysis);
|
|
};
|
|
|
|
// Replaces Mint IL instructions with Uint32 IL instructions
|
|
// when possible. Uses output of RangeAnalysis.
|
|
class IntegerInstructionSelector : public ValueObject {
|
|
public:
|
|
explicit IntegerInstructionSelector(FlowGraph* flow_graph);
|
|
|
|
void Select();
|
|
|
|
private:
|
|
bool IsPotentialUint32Definition(Definition* def);
|
|
void FindPotentialUint32Definitions();
|
|
bool IsUint32NarrowingDefinition(Definition* def);
|
|
void FindUint32NarrowingDefinitions();
|
|
bool AllUsesAreUint32Narrowing(Value* list_head);
|
|
bool CanBecomeUint32(Definition* def);
|
|
void Propagate();
|
|
Definition* ConstructReplacementFor(Definition* def);
|
|
void ReplaceInstructions();
|
|
|
|
Zone* zone() const { return zone_; }
|
|
|
|
GrowableArray<Definition*> potential_uint32_defs_;
|
|
BitVector* selected_uint32_defs_;
|
|
|
|
FlowGraph* flow_graph_;
|
|
Zone* zone_;
|
|
};
|
|
|
|
} // namespace dart
|
|
|
|
#endif // RUNTIME_VM_COMPILER_BACKEND_RANGE_ANALYSIS_H_
|