1acb21443f
This makes working with it easier, similar to how we have all type propagation code in flow_graph_type_propagator.{cc,h}
BUG=
R=fschneider@google.com
Review URL: https://codereview.chromium.org//442293002
git-svn-id: https://dart.googlecode.com/svn/branches/bleeding_edge/dart@38928 260f80e4-7a28-3924-810f-c04153c831b5
496 lines
15 KiB
C++
496 lines
15 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 VM_FLOW_GRAPH_RANGE_ANALYSIS_H_
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#define VM_FLOW_GRAPH_RANGE_ANALYSIS_H_
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#include "vm/flow_graph.h"
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#include "vm/intermediate_language.h"
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namespace dart {
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class RangeBoundary : public ValueObject {
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public:
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enum Kind {
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kUnknown,
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kNegativeInfinity,
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kPositiveInfinity,
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kSymbol,
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kConstant,
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};
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enum RangeSize {
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kRangeBoundarySmi,
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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) {
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return RangeBoundary(val);
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}
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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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// Construct a RangeBoundary for the constant MinSmi value.
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static RangeBoundary MinSmi() {
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return FromConstant(Smi::kMinValue);
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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(Smi::kMaxValue);
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}
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// Construct a RangeBoundary for the constant kMin value.
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static RangeBoundary MinConstant() {
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return FromConstant(kMin);
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}
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// Construct a RangeBoundary for the constant kMax value.
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static RangeBoundary MaxConstant() {
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return FromConstant(kMax);
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}
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// Calculate the minimum of a and b within the given range.
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static RangeBoundary Min(RangeBoundary a, RangeBoundary b, RangeSize size);
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static RangeBoundary Max(RangeBoundary a, RangeBoundary b, 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() && !Smi::IsValid(ConstantValue())) || IsInfinity();
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}
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// Returns true if this outside mint range.
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bool OverflowedMint() const {
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return IsInfinity();
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}
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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 (size == kRangeBoundaryInt64) ? MinConstant() : MinSmi();
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}
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if (IsPositiveInfinity()) {
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return (size == kRangeBoundaryInt64) ? MaxConstant() : MaxSmi();
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}
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if ((size == kRangeBoundarySmi) && IsConstant()) {
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if (ConstantValue() <= Smi::kMinValue) {
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return MinSmi();
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}
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if (ConstantValue() >= Smi::kMaxValue) {
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return MaxSmi();
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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 IsSmiMinimumOrBelow() const {
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return IsNegativeInfinity() ||
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(IsConstant() && (ConstantValue() <= Smi::kMinValue));
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}
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bool IsSmiMaximumOrAbove() const {
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return IsPositiveInfinity() ||
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(IsConstant() && (ConstantValue() >= Smi::kMaxValue));
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}
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bool IsMinimumOrBelow() const {
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return IsNegativeInfinity() || (IsConstant() && (ConstantValue() == kMin));
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}
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bool IsMaximumOrAbove() const {
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return IsPositiveInfinity() || (IsConstant() && (ConstantValue() == kMax));
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}
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intptr_t kind() const {
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return kind_;
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}
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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 {
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return IsConstant() || IsInfinity();
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}
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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 {
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return offset_;
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}
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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(BufferFormatter* 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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int64_t value = static_cast<int64_t>(value_boundary.ConstantValue());
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int64_t result = value >> shift_count;
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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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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(RangeBoundary min, RangeBoundary max) : min_(min), max_(max) { }
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static Range* Unknown() {
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return new Range(RangeBoundary::MinConstant(),
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RangeBoundary::MaxConstant());
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}
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static Range* UnknownSmi() {
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return new Range(RangeBoundary::MinSmi(),
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RangeBoundary::MaxSmi());
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}
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void PrintTo(BufferFormatter* f) const;
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static const char* ToCString(const Range* range);
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const RangeBoundary& min() const { return min_; }
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const RangeBoundary& max() const { return max_; }
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static RangeBoundary ConstantMinSmi(const Range* range) {
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if (range == NULL) {
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return RangeBoundary::MinSmi();
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}
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return range->min().LowerBound().Clamp(RangeBoundary::kRangeBoundarySmi);
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}
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static RangeBoundary ConstantMaxSmi(const Range* range) {
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if (range == NULL) {
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return RangeBoundary::MaxSmi();
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}
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return range->max().UpperBound().Clamp(RangeBoundary::kRangeBoundarySmi);
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}
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static RangeBoundary ConstantMin(const Range* range) {
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if (range == NULL) {
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return RangeBoundary::MinConstant();
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}
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return range->min().LowerBound().Clamp(RangeBoundary::kRangeBoundaryInt64);
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}
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static RangeBoundary ConstantMax(const Range* range) {
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if (range == NULL) {
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return RangeBoundary::MaxConstant();
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}
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return range->max().UpperBound().Clamp(RangeBoundary::kRangeBoundaryInt64);
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}
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// [0, +inf]
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bool IsPositive() 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 {
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return !min_.IsInfinity() && !max_.IsInfinity();
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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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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 bool 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 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 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 bool 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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// 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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static Range* 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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private:
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RangeBoundary min_;
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RangeBoundary max_;
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};
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// Range analysis for integer values.
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class RangeAnalysis : public ValueObject {
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public:
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explicit RangeAnalysis(FlowGraph* flow_graph)
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: flow_graph_(flow_graph),
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marked_defns_(NULL) { }
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// Infer ranges for all values and remove overflow checks from binary smi
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// operations when proven redundant.
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void Analyze();
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private:
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// Collect all values that were proven to be smi in smi_values_ array and all
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// CheckSmi instructions in smi_check_ array.
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void CollectValues();
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// Iterate over smi values and constrain them at branch successors.
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// Additionally constraint values after CheckSmi instructions.
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void InsertConstraints();
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// Iterate over uses of the given definition and discover branches that
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// constrain it. Insert appropriate Constraint instructions at true
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// and false successor and rename all dominated uses to refer to a
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// Constraint instead of this definition.
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void InsertConstraintsFor(Definition* defn);
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// Create a constraint for defn, insert it after given instruction and
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// rename all uses that are dominated by it.
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ConstraintInstr* InsertConstraintFor(Definition* defn,
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Range* constraint,
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Instruction* after);
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void ConstrainValueAfterBranch(Definition* defn, Value* use);
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void ConstrainValueAfterCheckArrayBound(Definition* defn,
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CheckArrayBoundInstr* check,
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intptr_t use_index);
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// Replace uses of the definition def that are dominated by instruction dom
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// with uses of other definition.
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void RenameDominatedUses(Definition* def,
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Instruction* dom,
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Definition* other);
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// Walk the dominator tree and infer ranges for smi values.
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void InferRanges();
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void InferRangesRecursive(BlockEntryInstr* block);
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enum Direction {
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kUnknown,
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kPositive,
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kNegative,
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kBoth
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};
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Range* InferInductionVariableRange(JoinEntryInstr* loop_header,
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PhiInstr* var);
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void ResetWorklist();
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void MarkDefinition(Definition* defn);
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static Direction ToDirection(Value* val);
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static Direction Invert(Direction direction) {
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return (direction == kPositive) ? kNegative : kPositive;
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}
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static void UpdateDirection(Direction* direction,
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Direction new_direction) {
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if (*direction != new_direction) {
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if (*direction != kUnknown) new_direction = kBoth;
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*direction = new_direction;
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}
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}
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// Remove artificial Constraint instructions and replace them with actual
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// unconstrained definitions.
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void RemoveConstraints();
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Range* ConstraintRange(Token::Kind op, Definition* boundary);
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Isolate* isolate() const { return flow_graph_->isolate(); }
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FlowGraph* flow_graph_;
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// Value that are known to be smi or mint.
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GrowableArray<Definition*> values_;
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// All CheckSmi instructions.
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GrowableArray<CheckSmiInstr*> smi_checks_;
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// All Constraints inserted during InsertConstraints phase. They are treated
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// as smi values.
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GrowableArray<ConstraintInstr*> constraints_;
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// Bitvector for a quick filtering of known smi or mint values.
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BitVector* definitions_;
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// Worklist for induction variables analysis.
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GrowableArray<Definition*> worklist_;
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BitVector* marked_defns_;
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DISALLOW_COPY_AND_ASSIGN(RangeAnalysis);
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};
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// Replaces Mint IL instructions with Uint32 IL instructions
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// when possible. Uses output of RangeAnalysis.
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class IntegerInstructionSelector : public ValueObject {
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public:
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explicit IntegerInstructionSelector(FlowGraph* flow_graph);
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void Select();
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private:
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bool IsPotentialUint32Definition(Definition* def);
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void FindPotentialUint32Definitions();
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bool IsUint32NarrowingDefinition(Definition* def);
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void FindUint32NarrowingDefinitions();
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bool AllUsesAreUint32Narrowing(Value* list_head);
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bool CanBecomeUint32(Definition* def);
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void Propagate();
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Definition* ConstructReplacementFor(Definition* def);
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void ReplaceInstructions();
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Isolate* isolate() const { return isolate_; }
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GrowableArray<Definition*> potential_uint32_defs_;
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BitVector* selected_uint32_defs_;
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FlowGraph* flow_graph_;
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Isolate* isolate_;
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};
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} // namespace dart
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#endif // VM_FLOW_GRAPH_RANGE_ANALYSIS_H_
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