4cf8091c8d
Bug: https://github.com/dart-lang/sdk/issues/49046 Change-Id: I20413cd2b2ff284d2e4b92949f057c97b98fb49b Reviewed-on: https://dart-review.googlesource.com/c/sdk/+/246042 Reviewed-by: Brian Wilkerson <brianwilkerson@google.com>
491 lines
11 KiB
Dart
491 lines
11 KiB
Dart
// Copyright (c) 2017, 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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import 'package:analyzer/dart/element/nullability_suffix.dart';
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import 'package:test_reflective_loader/test_reflective_loader.dart';
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import '../src/dart/resolution/context_collection_resolution.dart';
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main() {
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defineReflectiveSuite(() {
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defineReflectiveTests(InvalidCodeTest);
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defineReflectiveTests(InvalidCodeWithoutNullSafetyTest);
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});
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}
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@reflectiveTest
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class InvalidCodeTest extends PubPackageResolutionTest {
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test_functionExpression_emptyBody() async {
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await _assertCanBeAnalyzed(r'''
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var v = <T>();
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''');
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}
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test_functionExpressionInvocation_mustBeNullShortingTerminated() async {
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// It looks like MethodInvocation, but because `8` is not SimpleIdentifier,
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// we parse it as FunctionExpressionInvocation.
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await _assertCanBeAnalyzed(r'''
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var v = a?.8(b);
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''');
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}
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test_inAnnotation_noFlow_labeledStatement() async {
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await _assertCanBeAnalyzed('''
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@A(() { label: })
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typedef F = void Function();
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''');
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}
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test_inDefaultValue_noFlow_ifExpression() async {
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await _assertCanBeAnalyzed('''
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typedef void F({a = [if (true) 0]});
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''');
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}
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test_inDefaultValue_noFlow_ifStatement() async {
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await _assertCanBeAnalyzed('''
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typedef void F([a = () { if (true) 0; }]);
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''');
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}
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test_issue_40837() async {
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await _assertCanBeAnalyzed('''
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class A {
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const A(_);
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}
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@A(() => 0)
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class B {}
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''');
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}
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test_methodInvocation_ofGenericClass_generic_static_fromLegacy() async {
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newFile('$testPackageLibPath/a.dart', r'''
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class A<T> {
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static void foo<T2>() {}
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}
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''');
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await _assertCanBeAnalyzed('''
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// @dart = 2.9
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import 'a.dart';
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const bar = A.foo();
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''');
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}
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Future<void> _assertCanBeAnalyzed(String text) async {
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await resolveTestCode(text);
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assertHasTestErrors();
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}
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}
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/// Tests for various end-to-end cases when invalid code caused exceptions
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/// in one or another Analyzer subsystem. We are not interested not in specific
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/// errors generated, but we want to make sure that there is at least one,
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/// and analysis finishes without exceptions.
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@reflectiveTest
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class InvalidCodeWithoutNullSafetyTest extends PubPackageResolutionTest
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with WithoutNullSafetyMixin {
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// TODO(https://github.com/dart-lang/sdk/issues/44666): Use null safety in
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// test cases.
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test_const_AwaitExpression() async {
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await _assertCanBeAnalyzed(r'''
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const a = await b();
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''');
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}
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test_const_ForPartsWithExpression() async {
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await _assertCanBeAnalyzed(r'''
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@A([for (;;) 0])
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void f() {}
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''');
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}
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/// This code results in a method with the empty name, and the default
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/// constructor, which also has the empty name. The `Map` in `f` initializer
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/// references the empty name.
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test_constructorAndMethodNameCollision() async {
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await _assertCanBeAnalyzed('''
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class C {
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var f = { : };
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@ ();
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}
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''');
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}
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test_constructorDeclaration_named_missingName() async {
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await _assertCanBeAnalyzed('''
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class C {
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C.();
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}
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''');
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}
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test_constructorDeclaration_named_missingName_factory() async {
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await _assertCanBeAnalyzed('''
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class C {
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factory C.();
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}
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''');
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}
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test_duplicateName_class_enum() async {
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await _assertCanBeAnalyzed('''
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class A<T> {
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void foo(B b) {
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b.bar(this);
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}
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}
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class B {
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void bar(A a) {}
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}
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enum A {
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a, b, c
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}
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''');
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}
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test_extensionOverrideInAnnotationContext() async {
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await _assertCanBeAnalyzed('''
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class R {
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const R(int x);
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}
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@R(E(null).f())
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extension E on Object {
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int f() => 0;
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}
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''');
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}
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test_extensionOverrideInAnnotationContext_importedWithPrefix() async {
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newFile('$testPackageLibPath/a.dart', r'''
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extension E on Object {
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int f() => 0;
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}
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''');
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await _assertCanBeAnalyzed('''
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import 'a.dart' as prefix;
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class A {
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const A(int x);
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}
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@R(prefix.E(null).f())
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void g() {}
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}
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''');
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}
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test_extensionOverrideInConstContext() async {
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await _assertCanBeAnalyzed('''
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extension E on Object {
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int f() => 0;
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}
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const e = E(null).f();
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''');
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}
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test_fieldFormalParameter_annotation_localFunction() async {
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await _assertCanBeAnalyzed(r'''
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void main() {
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void foo(@deprecated this.bar) {}
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}
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''');
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}
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test_fuzz_01() async {
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await _assertCanBeAnalyzed(r'''
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typedef F = void Function(bool, int a(double b));
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''');
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var alias = findElement.typeAlias('F');
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assertType(
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alias.instantiate(
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typeArguments: const [],
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nullabilitySuffix: NullabilitySuffix.star,
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),
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'void Function(bool, int Function(double))');
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}
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test_fuzz_02() async {
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await _assertCanBeAnalyzed(r'''
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class G<class G{d
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''');
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}
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test_fuzz_03() async {
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await _assertCanBeAnalyzed('''
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class{const():super.{n
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''');
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}
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test_fuzz_04() async {
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await _assertCanBeAnalyzed('''
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f({a: ({b = 0}) {}}) {}
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''');
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}
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test_fuzz_05() async {
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// Here 'v' is used as both the local variable name, and its type.
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// This triggers "reference before declaration" diagnostics.
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// It attempts to ask the enclosing unit element for "v".
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// Every (not library or unit) element must have the enclosing unit.
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await _assertCanBeAnalyzed('''
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f({a = [for (v v in [])]}) {}
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''');
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}
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test_fuzz_06() async {
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await _assertCanBeAnalyzed(r'''
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class C {
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int f;
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set f() {}
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}
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''');
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}
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test_fuzz_07() async {
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// typedef v(<T extends T>(e
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await _assertCanBeAnalyzed(r'''
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typedef F(a<TT extends TT>(e));
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''');
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}
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test_fuzz_08() async {
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// class{const v
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// v=((){try catch
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// When we resolve initializers of typed constant variables,
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// we should build locale elements.
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await _assertCanBeAnalyzed(r'''
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class C {
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const Object v = () { var a = 0; };
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}
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''');
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}
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test_fuzz_09() async {
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await _assertCanBeAnalyzed(r'''
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typedef void F(int a, this.b);
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''');
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var alias = findElement.typeAlias('F');
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assertType(
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alias.instantiate(
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typeArguments: const [],
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nullabilitySuffix: NullabilitySuffix.star,
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),
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'void Function(int, dynamic)');
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}
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test_fuzz_10() async {
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await _assertCanBeAnalyzed(r'''
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void f<@A(() { Function() v; }) T>() {}
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''');
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}
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test_fuzz_11() async {
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// Here `F` is a generic function, so it cannot be used as a bound for
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// a type parameter. The reason it crashed was that we did not build
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// the bound for `Y` (not `T`), because of the order in which types
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// for `T extends F` and `typedef F` were built.
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await _assertCanBeAnalyzed(r'''
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typedef F<X> = void Function<Y extends num>();
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class A<T extends F> {}
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''');
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}
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test_fuzz_12() async {
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// This code crashed with summary2 because usually AST reader is lazy,
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// so we did not read metadata `@b` for `c`. But default values must be
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// read fully.
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// Fixed 2020-11-12.
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await _assertCanBeAnalyzed(r'''
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void f({a = [for (@b c = 0;;)]}) {}
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''');
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}
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test_fuzz_13() async {
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// `x is int` promotes the type of `x` to `S extends int`, and the
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// underlying element is `TypeParameterMember`, which by itself is
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// questionable. But this is not a valid constant anyway, so we should
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// not even try to serialize it.
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await _assertCanBeAnalyzed(r'''
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const v = [<S extends num>(S x) => x is int ? x : 0];
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''');
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}
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test_fuzz_14() async {
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// This crashed because parser produces `ConstructorDeclaration`.
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// So, we try to create `ConstructorElement` for it, and it wants
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// `ClassElement` as the enclosing element. But we have `ExtensionElement`.
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await _assertCanBeAnalyzed(r'''
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extension E {
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factory S() {}
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}
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''');
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}
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test_fuzz_15() async {
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// `@A` is not a valid annotation, it is missing arguments.
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// There was a bug that we did not check for arguments being missing.
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await _assertCanBeAnalyzed(r'''
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class A<T> {}
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@A
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class B {}
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''');
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}
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test_fuzz_16() async {
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// The default constructor of `A` does not have formal parameters.
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// But we give it arguments.
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// There was a bug that we did not check for this mismatch.
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await _assertCanBeAnalyzed(r'''
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class A<T> {}
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@A(0)
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class B {}
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''');
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}
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test_fuzz_38091() async {
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// https://github.com/dart-lang/sdk/issues/38091
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// this caused an infinite loop in parser recovery
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await _assertCanBeAnalyzed(r'c(=k(<)>');
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}
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test_fuzz_38506() async {
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// https://github.com/dart-lang/sdk/issues/38506
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// We have only one LibraryElement to get resolved annotations.
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// Leave annotations node of other LibraryDirective(s) unresolved.
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await _assertCanBeAnalyzed(r'''
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library c;
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@foo
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library c;
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''');
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}
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test_fuzz_38878() async {
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// We should not attempt to resolve `super` in annotations.
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await _assertCanBeAnalyzed(r'''
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class C {
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@A(super.f())
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f(int x) {}
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}
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''');
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}
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test_fuzz_38953() async {
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// When we enter a directive, we should stop using the element walker
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// of the unit, just like when we enter a method body. Even though using
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// interpolation is not allowed in any directives.
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await _assertCanBeAnalyzed(r'''
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import '${[for(var v = 0;;) v]}';
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export '${[for(var v = 0;;) v]}';
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part '${[for(var v = 0;;) v]}';
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''');
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}
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test_genericFunction_asTypeArgument_ofUnresolvedClass() async {
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await _assertCanBeAnalyzed(r'''
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C<int Function()> c;
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''');
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}
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test_invalidPart_withPart() async {
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await _assertCanBeAnalyzed('''
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part of a;
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part 'test.dart';
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''');
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}
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test_issue_48688() async {
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// During parsing we recover as `<synthetic>.bar.baz()`.
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// So, we have a synthetic empty identifier.
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// There was a bug - we considered it a reference to the unnamed extension.
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await _assertCanBeAnalyzed(r'''
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void f() {
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final foo.bar.baz();
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}
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extension on int {}
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''');
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}
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test_keywordInConstructorInitializer_assert() async {
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await _assertCanBeAnalyzed('''
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class C {
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C() : assert = 0;
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}
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''');
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}
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test_keywordInConstructorInitializer_null() async {
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await _assertCanBeAnalyzed('''
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class C {
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C() : null = 0;
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}
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''');
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}
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test_keywordInConstructorInitializer_super() async {
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await _assertCanBeAnalyzed('''
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class C {
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C() : super = 0;
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}
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''');
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}
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test_keywordInConstructorInitializer_this() async {
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await _assertCanBeAnalyzed('''
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class C {
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C() : this = 0;
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}
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''');
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}
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test_libraryAfterImport() async {
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await _assertCanBeAnalyzed(r'''
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import 'dart:async';
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@foo
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library my;
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''');
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}
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test_localFunction_defaultFieldFormalParameter_metadata() async {
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await _assertCanBeAnalyzed(r'''
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const my = 0;
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void foo() {
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// ignore:unused_element
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void bar({@my this.x}) {}
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}
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''');
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}
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test_syntheticImportPrefix() async {
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await _assertCanBeAnalyzed('''
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import 'dart:math' as;
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''');
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}
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test_typeBeforeAnnotation() async {
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await _assertCanBeAnalyzed('''
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class A {
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const A([x]);
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}
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class B {
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dynamic @A(const A()) x;
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}
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''');
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}
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Future<void> _assertCanBeAnalyzed(String text) async {
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await resolveTestCode(text);
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assertHasTestErrors();
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}
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}
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