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Unified Diff: pkg/serialization/lib/serialization.dart

Issue 11293283: Initial version of a serialization framework (Closed) Base URL: http://dart.googlecode.com/svn/branches/bleeding_edge/dart/
Patch Set: Created 8 years ago
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Index: pkg/serialization/lib/serialization.dart
===================================================================
--- pkg/serialization/lib/serialization.dart (revision 0)
+++ pkg/serialization/lib/serialization.dart (revision 0)
@@ -0,0 +1,402 @@
+// Copyright (c) 2012, the Dart project authors. Please see the AUTHORS file
+// for details. All rights reserved. Use of this source code is governed by a
+// BSD-style license that can be found in the LICENSE file.
+
+/**
+ * This provides a general-purpose serialization facility for Dart objects. A
+ * [Serialization] is defined in terms of [SerializationRule]s and supports
+ * reading and writing to different formats.
+ *
+ * Setup
+ * =====
+ * A simple example of usage is
+ *
+ * var address = new Address();
+ * address.street = 'N 34th';
+ * address.city = 'Seattle';
+ * var serialization = new Serialization()
+ * ..addRuleFor(address);
+ * String output = serialization.write(address);
+ *
+ * This creates a new serialization and adds a rule for address objects. Right
+ * now it has to be passed an address instance because we can't write Address
+ * as a literal. Then we ask the Serialization to write the address and we get
+ * back a String which is a [JSON] representation of the state of it and related
+ * objects.
+ *
+ * The version above used reflection to automatically identify the public
+ * fields of the address object. We can also specify those fields explicitly.
+ *
+ * var serialization = new Serialization()
+ * ..addRuleFor(address,
+ * constructor: "create",
+ * constructorFields: ["number", "street"],
+ * fields: ["city"]);
+ *
+ * This rule still uses reflection to access the fields, but does not try to
+ * identify which fields to use, but instead uses only the "number" and "street"
+ * fields that we specified. We may also want to tell it to identify the
+ * fields, but to specifically omit certain fields that we don't want
+ * serialized.
+ *
+ * var serialization = new Serialization()
+ * ..addRuleFor(address,
+ * constructor: "",
+ * excludeFields: ["other", "stuff"]);
+ *
+ * We can also use a completely non-reflective rule to serialize and
+ * de-serialize objects.
+ *
+ * addressToMap(a) => {"number" : a.number, "street" : a.street,
+ * "city" : a.city};
+ * createAddress(Map m) => new Address.create(m["number"], m["street"]);
+ * fillInAddress(Map m, Address a) => a.city = m["city"];
+ * var serialization = new Serialization()
+ * ..addRule(
+ * new ClosureToMapRule(anAddress.runtimeType,
+ * addressToMap, createAddress, fillInAddress);
+ *
+ * Note that there are three different functions provided. The addressToMap
+ * function takes the fields we want serialized from the Address and puts them
+ * into a map. The createAddress function creates a new address using a map like
+ * the one returned by the first function. And the fillInAddress function fills
+ * in any remaining state in the created object.
+ *
+ * At the moment, however, using this rule increases the probability of problems
+ * with cycles. The problem is that before passing values to the user-supplied
+ * functions it has to inflate any references to be the real objects. Since it
+ * doesn't know which ones the creation function uses it has to inflate all of
+ * them. For example, consider a Node class with parent, leftChild, and
+ * rightChild, and the parent field was final and set in the constructor. When
+ * we inflate all of the values we will end up with a cycle and can't
+ * de-serialize. If we know which fields are used by the constructor we can
+ * inflate only those, which is what BasicRule does. We expect to make a richer
+ * API for rules not using reflection, but there's a tension between providing
+ * the serialization process with enough information and making it more work
+ * to specify.
+ *
+ * There are cases where the constructor needs values that we can't easily get
+ * the serialized object. For example, we may just want to pass null, or a
+ * constant value. To support this, we can specify as constructor fields
+ * values that aren't field names. If any value isn't a String, it will be
+ * treated as a constant and passed unaltered to the constructor.
+ *
+ * In some cases a non-constructor field should not be set using field
+ * access or a setter, but should be done by calling a method. For example, it
+ * may not be possible to set a List field "foo", and you need to call an
+ * addFoo() method for each entry in the list. In these cases, if you are using
+ * a BasicRule for the object you can call the specialTreatmentFor() method.
+ *
+ * s..addRuleFor(fooHolderInstance).specialTreatmentFor("foo",
+ * (parent, value) => for (var each in value) parent.addFoo(value));
+ *
+ * Writing
+ * =======
+ * To write objects, we use the write() methods. There are two variations.
+ *
+ * String output = serialization.write(someObject);
+ * List output = serialization.writeFlat(someObject);
+ *
+ * The first uses a representation in which objects are represented as maps
+ * keyed by field name, but in which references between objects have been
+ * converted into Reference objects. This is then encoded as a [JSON] string.
+ *
+ * The second representation holds all the objects as a List of simple types.
+ * For practical use you may want to convert that to a [JSON] or other encoded
+ * representation as well.
+ *
+ * Both representations are primarily intended as proofs of concept for
+ * different types of representation, and we expect to generalize that to a
+ * pluggable mechanism for different representations.
+ *
+ * Reading
+ * =======
+ * To read objects, the corresponding methods are [read] and [readFlat].
+ *
+ * List input = serialization.read(aString);
+ * List input = serialization.readFlat(aList);
+ *
+ * There is also a convenience method for the case of reading a single object.
+ *
+ * Object result = serialization.readOne(aString);
+ * Object result = serialization.readOneFlat(aString);
+ *
+ * When reading, the serialization instance doing the reading must be configured
+ * with compatible rules to the one doing the writing. It's possible for the
+ * rules to be different, but they need to be able to read the same
+ * representation. For most practical purposes right now they should be the
+ * same. The simplest way to achieve this is by having the serialization
+ * variable [selfDescribing] be true. In that case the rules themselves are also
+ * stored along with the serialized data, and can be read back on the receiving
+ * end. Note that this does not yet work for [ClosureToMapRule]. The
+ * [selfDescribing] variable is true by default.
+ *
+ * When reading, some object references should not be serialized, but should be
+ * connected up to other instances on the receiving side. A notable example of
+ * this is when serialization rules have been stored. Instances of BasicRule
+ * take a [ClassMirror] in their constructor, and we cannot serialize those. So
+ * when we read the rules, we must provide a Map<String, Object> which maps from
+ * the simple name of classes we are interested in to a [ClassMirror]. This can
+ * be provided either in the [externalObjects] variable of the Serialization,
+ * or as an additional parameter to the reading methods.
+ *
+ * new Serialization()
+ * ..addRuleFor(new Person(), constructorFields: ["name"])
+ * ..externalObjects['Person'] = reflect(new Person()).type;
+ */
+library serialization;
+
+import 'src/mirrors_helpers.dart';
+import 'src/serialization_helpers.dart';
+import 'src/polyfill_identity_set.dart';
+import 'dart:json' show JSON;
+
+part 'src/reader_writer.dart';
+part 'src/serialization_rule.dart';
+part 'src/basic_rule.dart';
+
+/**
+ * This class defines a particular serialization scheme, in terms of
+ * [SerializationRule] instances, and supports reading and writing them.
+ * See library comment for examples of usage.
+ */
+class Serialization {
+
+ /**
+ * The serialization is controlled by the list of Serialization rules. These
+ * are most commonly added via [addRuleFor].
+ */
+ List rules = [];
+
+ /**
+ * When reading, we may need to resolve references to existing objects in
+ * the system. The right action may not be to create a new instance of
+ * something, but rather to find an existing instance and connect to it.
+ * For example, if we have are serializing an Email message and it has a
+ * link to the owning account, it may not be appropriate to try and serialize
+ * the account. Instead we should just connect the de-serialized message
+ * object to the account object that already exists there.
+ */
+ Map<String, dynamic> externalObjects = {};
+
+ /**
+ * When we write out data using this serialization, should we also write
+ * out a description of the rules.
+ */
+ bool selfDescribing = true;
+
+ /**
+ * Creates a new serialization with a default set of rules for primitives
+ * and lists.
+ */
+ Serialization() {
+ addDefaultRules();
+ }
+
+ /**
+ * Creates a new serialization with no default rules at all. The most common
+ * use for this is if we are reading self-describing serialized data and
+ * will populate the rules from that data.
+ */
+ Serialization.blank() { }
+
+ /**
+ * Create a [BasicRule] rule for the type of
+ * [instanceOfType]. Optionally
+ * allows specifying a [constructor] name, the list of [constructorFields],
+ * and the list of [fields] not used in the constructor. Returns the new
+ * rule.
+ *
+ * If the optional parameters aren't specified, the default constructor will
+ * be used, and the list of fields will be computed. Alternatively, you can
+ * omit [fields] and provide [excludeFields], which will then compute the
+ * list of fields specifically excluding those listed.
+ *
+ * The fields can be actual public fields, but can also be getter/setter
+ * pairs or getters whose value is provided in the constructor. For the
+ * [constructorFields] they can also be arbitrary objects. Anything that is
+ * not a String will be treated as a constant value to be used in any
+ * construction of these objects.
+ *
+ * If the list of fields is computed, fields from the superclass will be
+ * included. However, each subclass needs its own rule, since the constructors
+ * are not inherited, and so may need to be specified separately for each
+ * subclass.
+ */
+ // TODO(alanknight): Take a type rather than an instance. Issue 6282 and 6433.
+ BasicRule addRuleFor(
+ instanceOfType,
+ {String constructor,
+ List constructorFields,
+ List<String> fields,
+ List<String> excludeFields}) {
+
+ var rule;
+ rule = new BasicRule(
+ turnInstanceIntoSomethingWeCanUse(
+ instanceOfType),
+ constructor, constructorFields, fields, excludeFields);
+ addRule(rule);
+ return rule;
+ }
+
+ /** Set up the default rules, for lists and primitives. */
+ void addDefaultRules() {
+ addRule(new PrimitiveRule());
+ addRule(new ListRule());
+ // Both these rules apply to lists, so unless otherwise indicated,
+ // it will always find the first one.
+ addRule(new ListRuleEssential());
+ }
+
+ /**
+ * Add a new SerializationRule [rule]. The addRuleFor method will probably
+ * handle most simple cases, but for adding an arbitrary rule, including
+ * a SerializationRule subclass which you have created, you can use this
+ * method.
+ */
+ void addRule(SerializationRule rule) {
+ rule.number = rules.length;
+ rules.add(rule);
+ }
+
+ /**
+ * This is the basic method to write out an object graph rooted at
+ * [object] and return the result. Right now this is hard-coded to return
+ * a String from a custom [JSON] format, but that is likely to change to be
+ * more pluggable in the near future.
+ */
+ String write(Object object) {
+ return newWriter().write(object);
+ }
+
+ /**
+ * Return a new [Writer] object for this serialization. This is useful if you
+ * want to do something more complex with the writer than just returning
+ * the final result.
+ */
+ Writer newWriter() => new Writer(this);
+
+ /**
+ * Write out the tree in a custom flat format, returning a list containing
+ * only "simple" types: num, String, and bool.
+ */
+ List writeFlat(Object object) {
+ return newWriter().writeFlat(object);
+ }
+
+ /**
+ * Read the serialized data from [input] and return a List of the root
+ * objects from the result. If there are objects that need to be resolved
+ * in the current context, they should be provided in [externals] as a
+ * Map from names to values. In particular, in the current implementation
+ * any class mirrors needed should be provided in [externals] using the
+ * class name as a key. In addition to the [externals] map provided here,
+ * values will be looked up in the [externalObjects] map.
+ */
+ List read(String input, [Map externals = const {}]) {
+ return newReader().read(input, externals);
+ }
+
+ /**
+ * In the most common case there is only a single root object to be read,
+ * and this method can be used to return just one object rather than
+ * a List. The [input] and [externals] parameters are the same as for the
+ * general [read] method.
+ */
+ Object readOne(String input, [Map externals = const {}]) {
+ return newReader().readOne(input, externals);
+ }
+
+ /**
+ * Return a new [Reader] object for this serialization. This is useful if
+ * you want to do something more complex with the reader than just returning
+ * the final result.
+ */
+ Reader newReader() => new Reader(this);
+
+ /**
+ * Return the list of SerializationRule that apply to [object]. For
+ * internal use, but public because it's used in testing.
+ */
+ List<SerializationRule> rulesFor(object) {
+ // This has a couple of edge cases.
+ // 1) The owning object may have indicated we should use a different
+ // rule than the default.
+ // 2) We may not have a rule, in which case we lazily create a BasicRule.
+ // 3) Rules are allowed to say mustBePrimary, meaning that they can be used
+ // iff no other rule was chosen first.
+ // TODO(alanknight): Can the mustBePrimary mechanism be removed or changed.
+ // It adds an order dependency to the rules, and is messy. Reconsider in the
+ // light of a more general mechanism for multiple rules per object.
+ // TODO(alanknight): Finding which rules apply seems likely to be a
+ // bottleneck, particularly with the current reflective implementation.
+ // Consider how to improve it. e.g. cache the list of rules by class. But
+ // be careful of issues like rules which have arbitrary predicates. Or
+ // consider having the arbitrary predicates be secondary to an initial
+ // class-based lookup mechanism.
+ var target, candidateRules;
+ if (object is DesignatedRuleForObject) {
+ target = object.target;
+ candidateRules = object.possibleRules(rules);
+ } else {
+ target = object;
+ candidateRules = rules;
+ }
+ List applicable = candidateRules.filter((each) => each.appliesTo(target));
+
+ if (applicable.isEmpty) {
+ return [addRuleFor(target)];
+ }
+
+ if (applicable.length == 1) return applicable;
+ var first = applicable[0];
+ var finalRules = applicable.filter(
+ (x) => !x.mustBePrimary || (x == first));
+
+ if (finalRules.isEmpty) throw new SerializationException(
+ 'No valid rule found for object $object');
+ return finalRules;
+ }
+
+ /**
+ * Create a Serialization for serializing SerializationRules. This is used
+ * to save the rules in a self-describing format along with the data.
+ * If there are new rule classes created, they will need to be described
+ * here.
+ */
+ Serialization _ruleSerialization() {
+ // TODO(alanknight): There's an extensibility issue here with new rules.
+ // TODO(alanknight): How to handle rules with closures? They have to
+ // exist on the other side, but we might be able to hook them up by name,
+ // or we might just be able to validate that they're correctly set up
+ // on the other side.
+
+ // Make some bogus rule instances so we have something to feed rule creation
+ // and get their types. If only we had class literals implemented...
+ var closureRule = new ClosureToMapRule.stub([].runtimeType);
+ var basicRule = new BasicRule(reflect(null).type, '', [], [], []);
+
+ var meta = new Serialization()
+ ..selfDescribing = false
+ ..addRuleFor(new ListRule())
+ ..addRuleFor(new PrimitiveRule())
+ ..addRuleFor(new ListRuleEssential())
+ ..addRuleFor(basicRule,
+ constructorFields: ['typeWrapped',
+ 'constructorName',
+ 'constructorFields', 'regularFields', []],
+ fields: [])
+ ..addRule(new ClassMirrorRule());
+ meta.externalObjects = externalObjects;
+ return meta;
+ }
+}
+
+/**
+ * An exception class for errors during serialization.
+ */
+class SerializationException implements Exception {
+ final String message;
+ const SerializationException([this.message]);
+}
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