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I need to pass a Class as an argument, but I only have the generic type T. How can I infer the generic Class and pass it to fromJson() ?

public class Deserializer<T> implements JsonDeserializer<JsonList<T>> {
    public T someMethod(){
        ...
        T tag = gson.fromJson(obj, ???); // takes a class e.g. something.class
        ...
    }                       
}

Thanks

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3 Answers 3

up vote 1 down vote accepted

Assuming Deserializer is your class, the typical way to do this is to take the Class as a constructor parameter:

public class Deserializer<T> implements JsonDeserializer<JsonList<T>> {

  public static <T> Deserializer<T> newInstance(Class<T> c) {
    return new Deserializer<T>(c);
  }

  private final Class<T> clazz;
  private Deserializer(Class<T> c) { this.clazz = c; }

  public T someMethod(){
    ...
    T tag = gson.fromJson(obj, clazz); // takes a class e.g. something.class
    ...
  }                       
}

Then in client code:

Deserializer<String> d = Deserializer.newInstance(String.class);
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2  
And to save us from the mind-numbing repetition of the parameter type in client code, a factory method is warmly suggested: public static <T> Deserializer<T> newInstance(Class<T> c). –  Marko Topolnik Aug 21 '12 at 16:37
1  
@MarkoTopolnik if you don't like mind-numbing repetition, it's best to avoid generics and Java altogether :) –  Alex Aug 21 '12 at 16:41
    
Gladly, whenever that is an option---which is not very often :) –  Marko Topolnik Aug 21 '12 at 16:42
    
You don't need the static factory method, just use Java 7 and write: Deserializer<String> d = new Deserializer<>(String.class) –  herman Aug 22 '12 at 23:22

Thanks to Java Type Erasure, you can't.

http://docs.oracle.com/javase/tutorial/java/generics/erasure.html

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You can't generate it at runtime. That's why Gson#fromJson() requires you to pass it.

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