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The getClass() method of the Object class returns a Class <? extends |T|> where |T| is the erasure of the static type of the expression on which the getClass() method is called.

I don't understand the meaning of 'static type of expression'. Does this mean static context? Maybe I need some examples to understand better.

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2 Answers 2

up vote 5 down vote accepted

Here's an example:

String str = "a string";
Class<? extends String> c = str.getClass();

The expression on which the getClass() method is called is str. The static type of str is String. So in this case, that method returns a Class<? extends String>, where String is the erasure of the static type of str. In this case, the erasure part is not important because String is not a generic class.

Here's another example:

ArrayList<String> strList = new ArrayList<String>();
Class<? extends ArrayList> c2 = strList.getClass();

In this case, the expression is strList. The static type of strList is ArrayList<String>, and the erasure of that type is ArrayList. This is where the erasure part is important because it's telling you any type parameters of the static type will not be available at runtime. This is due to type erasure.

Because of type erasure, the following is invalid:

ArrayList<String> strList = new ArrayList<String>();
Class<? extends ArrayList<String>> c2 = strList.getClass(); //error: incompatible types
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Thanks you are good!! –  yapkm01 Sep 16 '11 at 1:26

The static type of an expression is the declared type of the variable; it's what the compiler sees. The actual runtime (dynamic) value of the expression may end up being a subtype of the static type. So for example:

Object o = functionReturningString();
Class<?> cls = o.getClass();

is valid, but

Object o = functionReturningString();
Class<? extends String> cls = o.getClass();

is not. Although:

Class<? extends String> cls = functionReturningString().getClass();

would be ok

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Thanks. I wish i could put a vote for everyone's answer! –  yapkm01 Sep 16 '11 at 1:28
    
Actually I think the only way to return Class<String> without the wildcard is to use String.class - getClass() still plays it safe even with that last example. –  Paul Bellora Sep 16 '11 at 1:39
    
Yes, you're right - forgot about the "? extends" bit –  Mike Sokolov Sep 16 '11 at 1:44
    
Cool, +1 for covering the ? extends aspect. –  Paul Bellora Sep 16 '11 at 1:52

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