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Please note that only order of the parameters are changed in below example. So my question is - Can we call below example is of method overloading?

public void show(String s, int a){
    System.out.println("Test.show(String, int)");
}
public void show(int s, String a){
    System.out.println("Test.show(int, String)");
}
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signature changes, of course it is overloading. –  Juvanis Sep 3 '13 at 17:40
1  
Yes they are overloaded. You could have just checked it yourself. The compiler would give error in case of wrongly overloaded method. –  Rohit Jain Sep 3 '13 at 17:40
4  
Can? Yes. Should? Probably not. –  Eric Stein Sep 3 '13 at 17:41
    
@RohitJain I guess OP's question was not, if this is possible, but if overloading is the correct term for it, which Jon Skeet explained perfectly (once again) –  Chips_100 Sep 4 '13 at 5:38

1 Answer 1

Yes, that's absolutely method overloading.

From section 8.4.9 of the JLS:

If two methods of a class (whether both declared in the same class, or both inherited by a class, or one declared and one inherited) have the same name but signatures that are not override-equivalent, then the method name is said to be overloaded.

"Override-equivalent" is described in section 8.4.2:

Two methods have the same signature if they have the same name and argument types.

[ ... Details on "same argument types ... ]

The signature of a method m1 is a subsignature of the signature of a method m2 if either:

  • m2 has the same signature as m1, or

  • the signature of m1 is the same as the erasure (§4.6) of the signature of m2.

Two method signatures m1 and m2 are override-equivalent iff either m1 is a subsignature of m2 or m2 is a subsignature of m1.

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