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So, I am just starting Java and I haven't been able to find a straightforward answer to why isn't possible to overload a function just by changing the return type. Why is it so? Will that provably change in a future version of Java?

By the way, just for reference, is this possible in C++?

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5 Answers 5

up vote 30 down vote accepted

You can't do it in Java, and you can't do it in C++. The rationale is that the return value alone is not sufficient for the compiler to figure out which function to call:

public int foo() {...}
public float foo() {..}

...
foo(); // which one?
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I always thought that if we did something like int i = foo() or float f = foo() it would know which one, but if the statement is just the function that it the compiler wouldn't know. I get it know. Thanks. –  nunos Mar 13 '10 at 20:01
3  
@nunos even if it was float f = foo() the compiler wouldn't be able to figure it out because both an int would be valid input for an float. Compare float f = 7; (is 7 a float or int?) –  NomeN Mar 13 '10 at 20:38
1  
@NomeN But your statement suggests that func(int i) and func(float i) would be indistinguishable for the compiler - and we all know this is not true. The real reason is given by Oded (see next answer) - it's about the method's signature. And, btw. 7 is definitely integer while 7.0 or 7f is float ;-) –  Ta Sas Mar 14 '10 at 0:21
    
7.0 is not float, it's double. –  FredOverflow Mar 14 '10 at 0:44
    
@erlord & @FredOverflow I am only trying to say that the compiler could choose either the float-foo or int-foo without being illegal, thus not being able to choose. That parameters are handled more strictly does not detract from my point. And of course 7 by itself is definitly an integer, but I was hinting at implicit conversion here. In my example 7 would be converted to a float, although it is an integer, at runtime it would 'become' a float. –  NomeN Mar 14 '10 at 14:39

The reason is that overloads in Java are only allowed for methods with different signatures.

The return type is not part of the method signature, hence cannot be used to distinguish overloads.

See Defining Methods from the Java tutorials.

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But why is the return type not part of the signature –  andho Oct 14 '13 at 11:46
    
@andho - Because that's how signatures have been defined? –  Oded Oct 15 '13 at 12:31
6  
oh "just because"! I see. –  andho Oct 16 '13 at 7:02

Before Java 5.0, when you override a method, both parameters and return type must match exactly. In Java 5.0, it introduces a new facility called covariant return type. You can override a method with the same signature but returns a subclass of the object returned. In another words, a method in a subclass can return an object whose type is a subclass of the type returned by the method with the same signature in the superclass.

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I was baffled when I first saw this. Thanks for explaining why this is possible! –  dylanlknowles Jul 11 '13 at 23:05

The compiler does not consider return type when differentiating methods, so you cannot declare two methods with the same signature even if they have a different return type.

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There s one percent chance where we see method overloading in java in a sub class (inheritance) there it is possible to write overloaded methods that differ only in return types.

hope it helps you out

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