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What is that I'm missing about this snippet of code?

public class Zero<N extends Number> {
  public N zero() {
    return new Integer(0);
  }
}

It says:

Type mismatch: cannot convert from Integer to N

Thanks!

Update I've changed the snippet to use an integer. Same thing happens. And it happens even when creating an anonymous subclass of Number. Could it be Eclipse that is faulty about this?

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Try Integer.valueOf( 0 ), looks like you found another "special case" for autoboxing-autounboxing and generics. –  Maurício Linhares Jul 25 '11 at 22:07
1  
0 is a Number, but it's not necessarily an N –  BlueRaja - Danny Pflughoeft Jul 26 '11 at 1:20
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5 Answers

up vote 13 down vote accepted

While an Integer is a Number, an Integer might not be compatible to N which can be any subclass of Number.

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Hmm, you're right. If the user code bounds N to BigDecimal, I can't return an Integer. It clearly doesn't have the right interface. –  Ionuț G. Stan Jul 25 '11 at 22:12
    
Now as to how to achieve what you want to do with the Zero class... –  Christopher Oezbek Jul 25 '11 at 22:18
    
I'll just return change the signature of the zero method to return Number an eliminate the type variable N. It turns out it's enough for my purposes. Here it is if you're curious: gist.github.com/1105403 –  Ionuț G. Stan Jul 25 '11 at 22:26
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Integer is not guaranteed to be a superclass of N, so you can't just set an Integer value to an object of type N.

Think about it this way: If someone instantiates Zero<N> as Zero<Double>, the class effectively becomes:

public class Zero {
  public Double zero() {
    return new Integer(0);
  }
}

which is obviously not valid.

Furthermore, you can't do return 0 either, because in the same manner, there is no way for the compiler to know how to convert it into N. (The compiler can only autobox types it knows about, but by using generics you widened the available types to also include custom implementations of Number.)

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"Integer is not guaranteed to be a superclass of N" ? I'm sure you meant something else, as if Integer was a superclass of N, it would make the code even "less compilable", as you cannot return a superclass of N from a method that declares its return type as N. –  Costi Ciudatu Jul 25 '11 at 22:19
    
Thanks for your answer. I accepted Christopher's answer because he was the first that made it clear (to me) what was the problem. –  Ionuț G. Stan Jul 25 '11 at 22:32
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The problem with your code is that Java needs to be able to confirm that the return type of the function needs to be convertible to N extends Number for any N. So, in particular, if I were to instantiate the class with a Double, as in

Zero<Double> z = new Zero<Double>();
z.zero();

You'd run into trouble, because zero says that it returns a Double but it actually returns an Integer. The type error indicates that the compiler is concerned that something like this will happen.

To the best of my knowledge, there is no good way to do this in Java because generics are implemented via erasure; it can't know what the type of the argument is.

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0 is an int, but since your method returns an object, it will be autoboxed to an Integer. The problem is that returning an Integer where any subclass of Number is allowed is not allowed by the compiler. That's simply because you can instantiate your class as

new Zero<Double>()

and in this case, returning Integer would not be compatible with the expected return type: Double.

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When 'N' extends 'Number', 'N' becomes a specialization of 'Number' and you cannot assign an instance of a base class to a reference variable of it's specialization (upcast issue). This holds good while returning as well. A base class instance cannot be returned using the specialization type.

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