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public class POJO<T> {

    private List<Integer> integer = new ArrayList<Integer>();

    public POJO() {
        integer.add(1);
        integer.add(2);
    }

    public List<Integer> getInteger() {
        return integer;
    }

    public static void main(String[] args) {
        POJO pojo = new POJO();
        List<String> integer = pojo.getInteger(); // No compile error?
        System.out.println(integer); // prints [1, 2]
    }
}

How is it possible for the following line to compile:

List<String> integer = pojo.getInteger();

Provided getInteger() is typed as following

public List<Integer> getInteger()
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1  
Your class declaration makes no sense: POJO<DateOrString extends Date & CharSequence>---this constrains the type param to a subtype of both Date and CharSequence, but from its name it seems you are expecting that it will allow any of the two. –  Marko Topolnik Aug 31 '12 at 10:41
    
@MarkoTopolnik It works if POJO is instantiated without generics. –  assylias Aug 31 '12 at 10:43
    
@assylias How come? In that case it ignores any generic type information, even those that have nothing to do with the class's type param? Strange. –  Marko Topolnik Aug 31 '12 at 10:44
    
@assylias Checked it, just emits a warning. Didn't know about that. If it's a static method, then it emits an error. This is worthy of a Java Puzzler. –  Marko Topolnik Aug 31 '12 at 10:47
2  
@MarkoTopolnik - they could probably do a whole book of generics puzzlers :-( –  Stephen C Aug 31 '12 at 11:46
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3 Answers

up vote 7 down vote accepted

I found a reference in the JLS 4.8 that backs up what @PeterLawrey says:

The type of a constructor (§8.8), instance method (§8.4, §9.4), or non-static field (§8.3) M of a raw type C that is not inherited from its superclasses or superinterfaces is the raw type that corresponds to the erasure of its type in the generic declaration corresponding to C.

So all instance methods of your raw POJO object are erased, including those that don't reference the type T of POJO<T>, which means (JLS 4.6):

The type parameters of a [...] method (§8.4.4), and the return type (§8.4.5) of a method, also undergo erasure if the [...] method's signature is erased.

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+1 for the reference. –  Peter Lawrey Aug 31 '12 at 11:25
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As pojo is not declared as a generic

POJO pojo = new POJO();

the compiler assumes you are using it in pre-generic code. i.e. where generics were added after the code was written. So when you do

List<String> integer = pojo.getInteger(); 

You get a warning rather than an error.

i.e. If the type is non-generic, all generic checks are turn off, not just those which relate to the type you didn't give it. I believe this is for maximum backward compatibility.

For comparison.

Map mapOfInteger = new Map(); // no generics
Set<String> entries = map.entrySet(); // gives a warning, not an error.

In this example, You might expect Set<Entry<K, V>> to become Set<Entry> if not generic, but the compiler falls back to treating the class a non-generic Set.

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1  
So here we finally have a definite, clear difference between POJO and POJO<?>. –  Marko Topolnik Aug 31 '12 at 10:54
1  
Just one comment: your line with map.keySet() is not as strong an example as original, where the method returns a definite List<Integer>. keySet() only returns Set<K>, so without K provided, that always made sense to me. This one is more of a head-scratcher. –  Marko Topolnik Aug 31 '12 at 11:00
    
@MarkoTopolnik entrySet() is a better example. –  Peter Lawrey Aug 31 '12 at 11:05
    
@assylias Tried to make it clearer. –  Peter Lawrey Aug 31 '12 at 11:08
1  
@PeterLawrey I like it clean and clear so I found the JLS reference that backs up your claims ;-) –  assylias Aug 31 '12 at 11:16
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This is unchecked assignment that is not treated as error for compatibility reasons.

See Interoperating with Legacy Code

In reality, the assignment is legal, but it generates an unchecked warning.

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