15

When I use Gson to parse between object and json, the initialization of a TypeToken is so weird:

Type collectionType = new TypeToken<Collection<Integer>>(){}.getType();

I just know this kind of format: new TypeToken<Collection<Integer>>().getType();, what's the braces in above for? Thanks in advance!

P.S. I've looked into the source code of TypeToken class, it is a class(not interface or abstract) and without any constructor, which means it uses no-parameter constructor as default.

P.S.2 When I delete the braces, it tell me that the constructor is not visible. When I looked inside the TypeToken class, this is the constructor:

  protected TypeToken() {
        this.type = getSuperclassTypeParameter(getClass());
        this.rawType = (Class<? super T>) $Gson$Types.getRawType(type);
        this.hashCode = type.hashCode();
  }

Why doesn't it just use public instead?

18

'Weird' is not exactly a technical term. The class is defined in such a way as to force you to explicitly specify a generic parameter to be associated with a concrete instance of it. Because compiled Java classes retain information about their generic parameters that information then becomes available to framework libraries that require it.

That's the very purpose of a super type token.

  • 1
    Thanks, another question: what if changing the default constructor from protected to public, when initializing TypeToken, we still need to specify the generic to Collection<Integer>, why can't the TypeToken instance be aware of the type of Collection<Integer> in this senario? – Judking Mar 18 '13 at 15:08
  • 4
    Well, actually, having the constructor protected is essential. It prevents people from being able to do TypeToken<Whatever> t = new TypeToken<Whatever>();, which would defeat the whole purpose of the class. As it is, you are forced to actually subclass in order to fully define the token, which is what the designers intend. You can think of the whole thing as a hack to get around the fact that Java implements generics via type-erasure. Hope that makes things more clear. – Perception Mar 18 '13 at 15:14
  • 1
    So this is the point: If I use TypeToken<Whatever> t = new TypeToken<Whatever>();, according to the generics mechanism, I cannot get any type information about Whatever; whereas if I subclass the TypeToken using TypeToken<Whatever> t = new TypeToken<Whatever>(){};, I can get the type information about Whatever? Am I right? – Judking Mar 19 '13 at 1:50
  • @Judking - precisely. – Perception Mar 19 '13 at 1:51
  • @Perception the wording of "compiled Java classes retain information about their generic parameters" is misleading. In fact, that statement is false for all classes except anonymous ones. gafter.blogspot.com/2006/12/super-type-tokens.html – Matt Ball Jun 15 '14 at 13:44
7

new TypeToken<Collection<Integer>>(){} means you are creating an anonymous inner class that extends TypeToken<Collection<Integer>>. Also at the same time you are creating an instance of that anonymous class.

From the link:

Anonymous classes enable you to make your code more concise. They enable you to declare and instantiate a class at the same time. They are like local classes except that they do not have a name. Use them if you need to use a local class only once.

3

TypeToken is abstract, so you have to create a concrete class to instantiate it, that's why you have the {}.

This code create the concrete anonymous subclass, instantiate it then calls getType on the instance.

  • sorry, TypeToken is not abstract. This is the declaration: public class TypeToken<T> {...}. – Judking Mar 18 '13 at 14:55
  • Well, not in all versions. See the link in my answer : public abstract class TypeToken<T> { – Denys Séguret Mar 18 '13 at 14:55
  • I see.. but how to explain for my version, the default constructor is protected, what does the braces do in this senario? So the brace can use for a non-abstact class just for create a anonymous class? Thanks bro. – Judking Mar 18 '13 at 15:00
  • That the constructor is protected serves the same purpose as it being abstract: You HAVE to subclass it to make use of it. With is the entire point. – stolsvik Nov 22 '14 at 10:31

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