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Here is the code I'm looking at (using Google's ImmutableMap)

ImmutableMap.<String,String>of();

What does this mean? What is the significance of doing

Class.<GenericType>methodName()?
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2 Answers 2

It's used to specify the generic type(s) when type inference does not work, for example:

Map<String, String> m = ImmutableMap.of();
Map<String, String> m2 = ImmutableMap.<String, String>builder().build();

It parameterizes the generic type(s) of the method's return value.

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Cool. This seems almost like casting. Would this be the same as Map<String,String> m2 = (Map<String,String>) ImmutableMap.builder().build()? –  Jeremy Oct 3 '12 at 22:53
    
I don't have an IDE (or any editor and a JDK) handy right now, but I think it doesn't compile. –  Frank Pavageau Oct 3 '12 at 22:59
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No, providing type arguments is better than a generic cast. A generic cast is meaningless (ArrayList<String> and ArrayList<Integer> are the same class and so cast would not catch that these are incompatible types). Providing generic types allows the compiler to ensure type safety at compile time. –  Dunes Oct 3 '12 at 23:04
    
@FrankPavageau I believe unparameterised statement will be allowed to compile. It will return a raw Map (if it cannot infer the type arguments), which you are allowed to cast (for reasons of backwards compatibility). But you are correct that you are not allowed to cast one parameterised type to another. –  Dunes Oct 3 '12 at 23:21
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ImmutableMap is a generic class with two type parameters, K and V. This syntax gives the concrete values for the two parameters, both being String in this case.

So the above returns an empty map of String to String.

See JLS 15.2 which among other things says a method invokation is

MethodInvocation:
     TypeName . NonWildTypeArguments Identifier ( ArgumentListopt )

Here the Type Arguments are String and String

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