e443b89f23
Includes support for modifier spans and duplicate named capture groups. Drops the flow graph implementation to ease maintenance. TEST=corelib/regexp Bug: https://github.com/dart-lang/sdk/issues/56573 Bug: https://github.com/dart-lang/sdk/issues/61337 Bug: https://github.com/dart-lang/sdk/issues/62349 Bug: https://github.com/dart-lang/sdk/issues/62708 Change-Id: I05640ba945a4fa5476e7ad463738f4f39d842c14 Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/480121 Reviewed-by: Lasse Nielsen <lrn@google.com> Commit-Queue: Ryan Macnak <rmacnak@google.com>
270 lines
8.2 KiB
C++
270 lines
8.2 KiB
C++
// Copyright 2016 the V8 project authors. All rights reserved.
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// Use of this source code is governed by a BSD-style license that can be
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// found in the LICENSE file.
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#include "vm/regexp/regexp-ast.h"
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#include <algorithm>
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#include <string>
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#include "platform/utils.h"
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#include "vm/os.h"
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namespace dart {
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#define MAKE_ACCEPT(Name) \
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void* RegExp##Name::Accept(RegExpVisitor* visitor, void* data) { \
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return visitor->Visit##Name(this, data); \
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}
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FOR_EACH_REG_EXP_TREE_TYPE(MAKE_ACCEPT)
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#undef MAKE_ACCEPT
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#define MAKE_TYPE_CASE(Name) \
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RegExp##Name* RegExpTree::As##Name() { \
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return nullptr; \
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} \
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bool RegExpTree::Is##Name() { \
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return false; \
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}
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FOR_EACH_REG_EXP_TREE_TYPE(MAKE_TYPE_CASE)
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#undef MAKE_TYPE_CASE
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#define MAKE_TYPE_CASE(Name) \
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RegExp##Name* RegExp##Name::As##Name() { \
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return this; \
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} \
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bool RegExp##Name::Is##Name() { \
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return true; \
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}
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FOR_EACH_REG_EXP_TREE_TYPE(MAKE_TYPE_CASE)
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#undef MAKE_TYPE_CASE
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namespace {
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Interval ListCaptureRegisters(ZoneList<RegExpTree*>* children) {
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Interval result = Interval::Empty();
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for (int i = 0; i < children->length(); i++)
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result = result.Union(children->at(i)->CaptureRegisters());
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return result;
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}
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} // namespace
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Interval RegExpAlternative::CaptureRegisters() {
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return ListCaptureRegisters(nodes());
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}
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Interval RegExpDisjunction::CaptureRegisters() {
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return ListCaptureRegisters(alternatives());
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}
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Interval RegExpLookaround::CaptureRegisters() {
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return body()->CaptureRegisters();
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}
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Interval RegExpCapture::CaptureRegisters() {
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Interval self(StartRegister(index()), EndRegister(index()));
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return self.Union(body()->CaptureRegisters());
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}
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Interval RegExpQuantifier::CaptureRegisters() {
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return body()->CaptureRegisters();
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}
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bool RegExpAssertion::IsAnchoredAtStart() {
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return assertion_type() == RegExpAssertion::Type::START_OF_INPUT;
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}
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bool RegExpAssertion::IsAnchoredAtEnd() {
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return assertion_type() == RegExpAssertion::Type::END_OF_INPUT;
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}
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bool RegExpAlternative::IsAnchoredAtStart() {
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ZoneList<RegExpTree*>* nodes = this->nodes();
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for (int i = 0; i < nodes->length(); i++) {
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RegExpTree* node = nodes->at(i);
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if (node->IsAnchoredAtStart()) {
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return true;
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}
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if (node->max_match() > 0) {
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return false;
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}
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}
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return false;
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}
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bool RegExpAlternative::IsAnchoredAtEnd() {
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ZoneList<RegExpTree*>* nodes = this->nodes();
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for (int i = nodes->length() - 1; i >= 0; i--) {
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RegExpTree* node = nodes->at(i);
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if (node->IsAnchoredAtEnd()) {
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return true;
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}
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if (node->max_match() > 0) {
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return false;
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}
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}
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return false;
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}
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bool RegExpDisjunction::IsAnchoredAtStart() {
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ZoneList<RegExpTree*>* alternatives = this->alternatives();
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for (int i = 0; i < alternatives->length(); i++) {
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if (!alternatives->at(i)->IsAnchoredAtStart()) return false;
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}
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return true;
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}
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bool RegExpDisjunction::IsAnchoredAtEnd() {
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ZoneList<RegExpTree*>* alternatives = this->alternatives();
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for (int i = 0; i < alternatives->length(); i++) {
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if (!alternatives->at(i)->IsAnchoredAtEnd()) return false;
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}
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return true;
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}
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bool RegExpLookaround::IsAnchoredAtStart() {
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return is_positive() && type() == LOOKAHEAD && body()->IsAnchoredAtStart();
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}
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bool RegExpCapture::IsAnchoredAtStart() {
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return body()->IsAnchoredAtStart();
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}
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bool RegExpCapture::IsAnchoredAtEnd() {
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return body()->IsAnchoredAtEnd();
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}
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RegExpDisjunction::RegExpDisjunction(ZoneList<RegExpTree*>* alternatives)
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: alternatives_(alternatives) {
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ASSERT(1 < alternatives->length());
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RegExpTree* first_alternative = alternatives->at(0);
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min_match_ = first_alternative->min_match();
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max_match_ = first_alternative->max_match();
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for (int i = 1; i < alternatives->length(); i++) {
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RegExpTree* alternative = alternatives->at(i);
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min_match_ = std::min(min_match_, alternative->min_match());
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max_match_ = std::max(max_match_, alternative->max_match());
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}
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}
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namespace {
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int IncreaseBy(int previous, int increase) {
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if (RegExpTree::kInfinity - previous < increase) {
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return RegExpTree::kInfinity;
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} else {
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return previous + increase;
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}
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}
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} // namespace
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RegExpAlternative::RegExpAlternative(ZoneList<RegExpTree*>* nodes)
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: nodes_(nodes) {
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ASSERT(1 < nodes->length());
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min_match_ = 0;
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max_match_ = 0;
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for (int i = 0; i < nodes->length(); i++) {
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RegExpTree* node = nodes->at(i);
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int node_min_match = node->min_match();
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min_match_ = IncreaseBy(min_match_, node_min_match);
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int node_max_match = node->max_match();
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max_match_ = IncreaseBy(max_match_, node_max_match);
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}
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}
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RegExpClassSetOperand::RegExpClassSetOperand(ZoneList<CharacterRange>* ranges,
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CharacterClassStrings* strings)
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: ranges_(ranges), strings_(strings) {
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ASSERT(ranges != nullptr);
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min_match_ = 0;
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max_match_ = 0;
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if (!ranges->is_empty()) {
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min_match_ = 1;
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max_match_ = 2;
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}
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if (has_strings()) {
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for (auto string : *strings) {
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min_match_ = std::min(min_match_, string.second->min_match());
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max_match_ = std::max(max_match_, string.second->max_match());
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}
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}
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}
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RegExpClassSetExpression::RegExpClassSetExpression(
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OperationType op,
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bool is_negated,
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bool may_contain_strings,
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ZoneList<RegExpTree*>* operands)
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: operation_(op),
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is_negated_(is_negated),
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may_contain_strings_(may_contain_strings),
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operands_(operands) {
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ASSERT(operands != nullptr);
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if (is_negated) {
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ASSERT(!may_contain_strings_);
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// We don't know anything about max matches for negated classes.
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// As there are no strings involved, assume that we can match a unicode
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// character (2 code points).
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max_match_ = 2;
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} else {
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max_match_ = 0;
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for (auto operand : *operands) {
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max_match_ = std::max(max_match_, operand->max_match());
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}
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}
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}
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// static
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RegExpClassSetExpression* RegExpClassSetExpression::Empty(Zone* zone,
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bool is_negated) {
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ZoneList<CharacterRange>* ranges =
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zone->template New<ZoneList<CharacterRange>>(0, zone);
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RegExpClassSetOperand* op =
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zone->template New<RegExpClassSetOperand>(ranges, nullptr);
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ZoneList<RegExpTree*>* operands =
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zone->template New<ZoneList<RegExpTree*>>(1, zone);
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operands->Add(op, zone);
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return zone->template New<RegExpClassSetExpression>(
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RegExpClassSetExpression::OperationType::kUnion, is_negated, false,
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operands);
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}
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bool RegExpText::StartsWithAtom() const {
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if (elements_.length() == 0) return false;
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return elements_.at(0).text_type() == TextElement::ATOM;
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}
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RegExpAtom* RegExpText::FirstAtom() const {
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return elements_.at(0).atom();
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}
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RegExpClassRanges::RegExpClassRanges(
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Zone* zone,
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ZoneList<CharacterRange>* ranges,
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RegExpClassRanges::ClassRangesFlags class_ranges_flags)
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: set_(ranges), class_ranges_flags_(class_ranges_flags) {
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// Convert the empty set of ranges to the negated Everything() range.
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if (ranges->is_empty()) {
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ranges->Add(CharacterRange::Everything(), zone);
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class_ranges_flags_ ^= NEGATED;
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}
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if (!is_negated() && !is_certainly_two_code_points() &&
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no_case_folding_needed()) {
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// Perhaps we can detect that it is always two code points.
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bool found_basic_plane = false;
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for (int i = 0; i < ranges->length(); i++) {
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if (ranges->at(i).from() < 0x10000) {
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found_basic_plane = true;
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break;
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}
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}
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if (!found_basic_plane) {
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class_ranges_flags_ |= IS_CERTAINLY_TWO_CODE_POINTS;
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}
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}
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}
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} // namespace dart
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