970a4ee600
Review URL: https://codereview.chromium.org//10960033 git-svn-id: https://dart.googlecode.com/svn/branches/bleeding_edge/dart@12755 260f80e4-7a28-3924-810f-c04153c831b5
411 lines
15 KiB
Dart
411 lines
15 KiB
Dart
// Copyright (c) 2012, 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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/**
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* TODO(johnniwinther): The terminology and invariants described below will not
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* hold until CL 10905305 has been committed.
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*
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* This library contains the infrastructure to parse and integrate patch files.
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*
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* Three types of elements can be patched: [LibraryElement], [ClassElement],
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* [FunctionElement]. Patches are introduced in patch libraries which are loaded
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* together with the corresponding origin library. Which libraries that are
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* patched is determined by the [dart2jsPatchPath] field of [LibraryInfo] found
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* in [:lib/_internal/libraries.dart:].
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*
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* Patch libraries are parsed like regular library and thus provided with their
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* own elements. These elements which are distinct from the elements from the
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* patched library and the relation between patched and patch elements is
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* established through the [:patch:] and [:origin:] fields found on
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* [LibraryElement], [ClassElement] and [FunctionElement]. The [:patch:] fields
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* are set on the patched elements to point to their corresponding patch
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* element, and the [:origin:] elements are set on the patch elements to point
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* their corresponding patched elements.
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*
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* The fields [Element.isPatched] and [Element.isPatch] can be used to determine
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* whether the [:patch:] or [:origin:] field, respectively, has been set on an
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* element, regardless of whether the element is one of the three patchable
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* element types or not.
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*
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* ## Variants of Classes and Functions ##
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*
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* With patches there are four variants of classes and function:
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*
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* Regular: A class or function which is not declared in a patch library and
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* which has no corresponding patch.
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* Origin: A class or function which is not declared in a patch library and
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* which has a corresponding patch. Origin functions must use the [:external:]
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* modifier and can have no body. Origin classes and functions are also
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* called 'patched'.
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* Patch: A class or function which is declared in a patch library and which
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* has a corresponding origin. Both patch classes and patch functions must use
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* the [:patch:] modifier.
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* Injected: A class or function (or even field) which is declared in a
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* patch library and which has no corresponding origin. An injected element
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* cannot use the [:patch:] modifier. Injected elements are never visible from
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* outside the patch library in which they have been declared. For this
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* reason, injected elements are often declared private and therefore called
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* also called 'patch private'.
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*
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* Examples of the variants is shown in the code below:
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*
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* // In the origin library:
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* class RegularClass { // A regular class.
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* void regularMethod() {} // A regular method.
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* }
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* class PatchedClass { // An origin class.
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* int regularField; // A regular field.
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* void regularMethod() {} // A regular method.
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* external void patchedMethod(); // An origin method.
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* }
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*
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* // In the patch library:
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* class _GhostClass { // A ghost class.
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* void _ghostMethod() {} // A ghost method.
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* }
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* patch class PatchedClass { // A patch class.
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* int _ghostField; { // A ghost field.
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* patch void patchedMethod() {} // A patch method.
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* }
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*
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*
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* ## Declaration and Implementation ##
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*
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* With patches we have two views on elements: as the 'declaration' which
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* introduces the entity and defines its interface, and as the 'implementation'
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* which defines the actual implementation of the entity.
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*
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* Every element has a 'declaration' and an 'implementation' element. For
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* regular and ghost elements these are the same. For origin elements the
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* declaration is the element itself and the implementation is the patch element
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* found through its [:patch:] field. For patch elements the implementation is
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* the element itself and the declaration is the origin element found through
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* its [:origin:] field. The declaration and implementation of any element is
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* conveniently available through the [Element.declaration] and
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* [Element.implementation] getters.
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*
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* Most patch-related invariants enforced through-out the compiler are defined
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* in terms of 'declaration' and 'implementation', and tested through the
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* predicate getters [Element.isDeclaration] and [Element.isImplementation].
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* Patch invariants are stated both in comments and as assertions.
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*
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*
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* ## General invariant guidelines ##
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*
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* For [LibraryElement] we always use declarations. This means the
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* [Element.getLibrary] method will only return library declarations. Patch
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* library implementations are only accessed through calls to
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* [Element.getImplementationLibrary] which is used to setup the correct
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* [Element.enclosingElement] relation between patch/ghost elements and the
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* patch library.
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*
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* For [ClassElement] and [FunctionElement] we use declarations for determining
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* identity and implementations for work based on the AST nodes, such as
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* resolution, type-checking, type inference, building SSA graphs, etc.
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* - Worklist only contain declaration elements.
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* - Most maps and sets use declarations exclusively, and their individual
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* invariants are stated in the field comments.
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* - [TreeElements] only map to patch elements from inside a patch library.
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* - Builders shift between declaration and implementation depending on usages.
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* - Compile-time constants use constructor implementation exclusively.
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* - Work on function parameters is performed on the declaration of the function
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* element.
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*/
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#library("patchparser");
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#import("dart:uri");
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#import("tree/tree.dart", prefix: "tree");
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#import("leg.dart", prefix: 'leg'); // CompilerTask, Compiler.
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#import("apiimpl.dart");
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#import("scanner/scannerlib.dart"); // Scanner, Parsers, Listeners
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#import("elements/elements.dart");
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#import('util/util.dart');
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class PatchParserTask extends leg.CompilerTask {
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PatchParserTask(leg.Compiler compiler): super(compiler);
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final String name = "Patching Parser";
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/**
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* Scans a library patch file, applies the method patches and
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* injections to the library, and returns a list of class
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* patches.
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*/
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void patchLibrary(Uri patchUri, LibraryElement library) {
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leg.Script script = compiler.readScript(patchUri, null);
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CompilationUnitElement compilationUnit =
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new CompilationUnitElement(script, library);
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LinkBuilder<tree.LibraryTag> imports = new LinkBuilder<tree.LibraryTag>();
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compiler.withCurrentElement(compilationUnit, () {
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// This patches the elements of the patch library into [library].
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// Injected elements are added directly under the compilation unit.
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// Patch elements are stored on the patched functions or classes.
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scanLibraryElements(compilationUnit, imports);
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});
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// After scanning declarations, we handle the import tags in the patch.
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// TODO(lrn): These imports end up in the original library and are in
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// scope for the original methods too. This should be fixed.
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for (tree.LibraryTag tag in imports.toLink()) {
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compiler.scanner.importLibraryFromTag(tag, compilationUnit);
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}
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}
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void scanLibraryElements(
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CompilationUnitElement compilationUnit,
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LinkBuilder<tree.LibraryTag> imports) {
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measure(() {
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// TODO(lrn): Possibly recursively handle #source directives in patch.
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leg.Script script = compilationUnit.script;
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Token tokens = new StringScanner(script.text).tokenize();
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Function idGenerator = compiler.getNextFreeClassId;
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PatchListener patchListener =
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new PatchElementListener(compiler,
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compilationUnit,
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idGenerator,
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imports);
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new PatchParser(patchListener).parseUnit(tokens);
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});
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}
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tree.ClassNode parsePatchClassNode(PartialClassElement element) {
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return measure(() => compiler.withCurrentElement(element, () {
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// Parse [PartialClassElement] using a "patch"-aware parser instead
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// of calling its [parseNode] method.
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if (element.cachedNode != null) return element.cachedNode;
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PatchMemberListener listener =
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new PatchMemberListener(compiler, element);
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Parser parser = new PatchClassElementParser(listener);
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Token token = parser.parseTopLevelDeclaration(element.beginToken);
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assert(token === element.endToken.next);
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element.cachedNode = listener.popNode();
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assert(listener.nodes.isEmpty());
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return element.cachedNode;
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}));
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}
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}
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/**
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* Extension of the [Listener] interface to handle the extra "patch" pseudo-
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* keyword in patch files.
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* Patch files shouldn't have a type named "patch".
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*/
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abstract class PatchListener extends Listener {
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void beginPatch(Token patch);
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void endPatch(Token patch);
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}
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/**
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* Partial parser that extends the top-level and class grammars to allow the
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* word "patch" in front of some declarations.
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*/
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class PatchParser extends PartialParser {
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PatchParser(PatchListener listener) : super(listener);
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PatchListener get patchListener => listener;
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bool isPatch(Token token) {
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return token.stringValue === null &&
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token.slowToString() == "patch";
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}
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/**
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* Parse top-level declarations, and allow "patch" in front of functions
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* and classes.
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*/
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Token parseTopLevelDeclaration(Token token) {
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if (!isPatch(token)) {
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return super.parseTopLevelDeclaration(token);
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}
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Token patch = token;
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token = token.next;
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String value = token.stringValue;
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if (value === 'interface'
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|| value === 'typedef'
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|| value === '#'
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|| value === 'abstract') {
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// At the top level, you can only patch functions and classes.
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// Patch classes and functions can't be marked abstract.
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return listener.unexpected(patch);
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}
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patchListener.beginPatch(patch);
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token = super.parseTopLevelDeclaration(token);
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patchListener.endPatch(patch);
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return token;
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}
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/**
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* Parse a class member.
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* If the member starts with "patch", it's a member override.
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* Only methods can be overridden, including constructors, getters and
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* setters, but not fields. If "patch" occurs in front of a field, the error
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* is caught elsewhere.
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*/
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Token parseMember(Token token) {
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if (!isPatch(token)) {
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return super.parseMember(token);
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}
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Token patch = token;
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patchListener.beginPatch(patch);
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token = super.parseMember(token.next);
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patchListener.endPatch(patch);
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return token;
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}
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}
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/**
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* Partial parser for patch files that also handles the members of class
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* declarations.
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*/
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class PatchClassElementParser extends PatchParser {
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PatchClassElementParser(PatchListener listener) : super(listener);
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Token parseClassBody(Token token) => fullParseClassBody(token);
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}
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/**
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* Extension of [ElementListener] for parsing patch files.
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*/
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class PatchElementListener extends ElementListener implements PatchListener {
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final LinkBuilder<tree.LibraryTag> imports;
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bool isMemberPatch = false;
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bool isClassPatch = false;
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PatchElementListener(leg.DiagnosticListener listener,
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CompilationUnitElement patchElement,
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int idGenerator(),
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this.imports)
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: super(listener, patchElement, idGenerator);
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MetadataAnnotation popMetadata() {
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// TODO(ahe): Remove this method.
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popNode(); // Discard null.
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return new PatchMetadataAnnotation();
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}
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void beginPatch(Token token) {
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if (token.next.stringValue === "class") {
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isClassPatch = true;
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} else {
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isMemberPatch = true;
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}
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handleIdentifier(token);
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}
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void endPatch(Token token) {
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if (token.next.stringValue === "class") {
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isClassPatch = false;
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} else {
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isMemberPatch = false;
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}
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}
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/**
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* Allow script tags (import only, the parser rejects the rest for now) in
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* patch files. The import tags will be added to the library.
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*/
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bool allowLibraryTags() => true;
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void addLibraryTag(tree.LibraryTag tag) {
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super.addLibraryTag(tag);
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imports.addLast(tag);
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}
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void pushElement(Element element) {
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if (isMemberPatch || (isClassPatch && element is ClassElement)) {
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// Apply patch.
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element.addMetadata(popMetadata());
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LibraryElement library = compilationUnitElement.getLibrary();
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Element existing = library.localLookup(element.name);
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if (isMemberPatch) {
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if (element is! FunctionElement) {
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listener.internalErrorOnElement(element,
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"Member patch is not a function.");
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}
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if (existing.kind === ElementKind.ABSTRACT_FIELD) {
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if (!element.isAccessor()) {
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listener.internalErrorOnElement(
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element, "Patching non-accessor with accessor");
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}
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AbstractFieldElement field = existing;
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if (element.isGetter()) {
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existing = field.getter;
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} else {
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existing = field.setter;
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}
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}
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if (existing is! FunctionElement) {
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listener.internalErrorOnElement(element,
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"No corresponding method for patch.");
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}
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FunctionElement function = existing;
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if (function.isPatched) {
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listener.internalErrorOnElement(
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element, "Patching the same function more than once.");
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}
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function.patch = element;
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} else {
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if (existing is! ClassElement) {
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listener.internalErrorOnElement(
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element, "Patching a non-class with a class patch.");
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}
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ClassElement classElement = existing;
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if (classElement.isPatched) {
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listener.internalErrorOnElement(
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element, "Patching the same class more than once.");
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}
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classElement.patch = element;
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}
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return;
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}
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super.pushElement(element);
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}
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}
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/**
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* Extension of [MemberListener] for parsing patch class bodies.
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*/
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class PatchMemberListener extends MemberListener implements PatchListener {
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bool isMemberPatch = false;
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bool isClassPatch = false;
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PatchMemberListener(leg.DiagnosticListener listener,
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Element enclosingElement)
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: super(listener, enclosingElement);
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MetadataAnnotation popMetadata() {
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// TODO(ahe): Remove this method.
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popNode(); // Discard null.
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return new PatchMetadataAnnotation();
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}
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void beginPatch(Token token) {
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if (token.next.stringValue === "class") {
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isClassPatch = true;
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} else {
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isMemberPatch = true;
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}
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handleIdentifier(token);
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}
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void endPatch(Token token) {
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if (token.next.stringValue === "class") {
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isClassPatch = false;
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} else {
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isMemberPatch = false;
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}
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}
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void addMember(Element element) {
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if (isMemberPatch || (isClassPatch && element is ClassElement)) {
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element.addMetadata(popMetadata());
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}
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super.addMember(element);
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}
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}
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// TODO(ahe): Get rid of this class.
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class PatchMetadataAnnotation extends MetadataAnnotation {
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final leg.Constant value = null;
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PatchMetadataAnnotation() : super(STATE_DONE);
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}
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