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In the following line

Graph<Number,Number> ig = Graphs.<Number,Number>synchronizedDirectedGraph(
                              new DirectedSparseMultigraph<Number,Number>());

could you please explain what Graphs.<Number,Number>synchronizedDirectedGraph means ? It looks like a call to a method Graphs.synchronizedDirectedGraph, but the template-like thingie after the dot puzzles me (at least due to my C++ background).

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Graph<Number,Number> ig -> Variable ig de type Graph avec les .......paramètres generic <Number,Number>..... ..Graphs. -> Appel d'une méthode statique de Graphs ......<Number,Number> -> paramètres generic de la méthode..... synchronizedDirectedGraph -> nom de la méthode...... new DirectedSparseMultigraph<Number,Number>() -> Nouvelle instance........ deDirectedSparceMultigraph avec comme paramètres generic <Number,Number> – jjj Feb 22 '10 at 5:58
    
answer source: developpez.net/forums/d704051/java/general-java/… – jjj Feb 22 '10 at 5:59
    
In C++ you would put the template arguments after the function name. Java distinguishes the syntax of generic types and generic methods (it also uses different name-spaces for types/fields and methods). Note, you do need the type in front for syntactical reasons (unless the generic arguments can be implied when you can miss the lot off). – Tom Hawtin - tackline Feb 22 '10 at 6:04
up vote 5 down vote accepted

The problem is that Java is not very intelligent in the places it supports type inference.

For a method:

class A{}
class B extends A{}
class Y{
  static <T> List<T> x(T t)
}

It infers the type List<B> from the parameter type B

List<B> bs = Y.x(new B());

But if you need List<A> you have to cast B or add the compiler hint:

List<A> as1 = Y.<A> x(new B());
List<A> as2 = Y.x((A) new B());

Part of the problem is that java generics are invariant so List<B> is not a subtype of List<A>.

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It is specifying the types for the static method. See Generic Types, Part 2 (particularly the "Generic mehods" section) for more information.

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