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Integer i = null;
if (i == 3)

Why the second line above throws a NullPointerException, IMHO, this has only one meaning which is Wrapper Object i is to be unboxed which yields the Exception such as:

ArrayList<Integer> list = new ArrayList<Integer>();
list.add(null);
int x = list.get(0);

EDIT: Can you supply me with some format doc?

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What do you expect the second line to produce? –  DaveHowes Feb 7 '12 at 14:06

4 Answers 4

up vote 9 down vote accepted

It throws NPE because compiler does the following "magic" for you:

Integer i = null;
if (i.intValue() == 3)

Obviously i.intValue() throws NPE when i is null.

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Does this mentioned anywhere in JLS? –  Muhammad Hewedy Feb 7 '12 at 15:10
    
@Muhammad, I believe it is mentioned. But I think that even better way to understand the compiler sugar is to compile code, then decompile it using one of available java decompilers (e.g jad) and see the result. You will see similar code there. –  AlexR Feb 7 '12 at 16:54

Think of the wrapper class to be a holder object. Something like:

public class Integer {

private int intValue;

//getters and setters

}

If the pointer or the reference to the whole object is null, you cant get to the value to do any boxing/unboxing operations.

When you say:

if (i == 3)

The unboxing occurs automatically on a null reference, hence the exception.

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When you try to compare a wrapped number with a primitive one, the wrapper is automatically un-boxed. If at that moment, the wrapper is null, you get a NullPointerException. This is one of the common pitfalls of the autoboxing system (the other being poor performance if you box/unbox numbers in a loop)

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If it didn't unbox the Integer you would get strange behaviour like

Integer i1 = -129;
Integer i2 = -129;
if (i1 != i2)
    System.out.println(i1 +" != " + i2);

or

Integer i1 = -129;
if (i1 != new Integer(-129))
    System.out.println(i1 +" != " + -129);

This prints

-129 != -129

because the references rather than the values are different.

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