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I am looking through the code someone wrote a while back and wondering whether I am missing something here

Assuming

List<Integer> runUids = new ArrayList<Integer>();

and later on as part of a loop

int runUID = runUidsAL.get(i).intValue();

Is there any reason why intValue() needs to be called here?. Don't think it's needed here. Do you?

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It depends upon what JDK version is used. – AVD Feb 17 '12 at 15:36
    
What is the type of runUID? is it int or Integer? and what is jdk version? – Nambari Feb 17 '12 at 15:36
    
@thinksteep it's at least JDK 5 otherwise he wouldn't be able to use generics. Since it's at least JDK 5, autoboxing will also be available. – Jesper Feb 17 '12 at 15:38
    
@thinksteep , may be he had used java 1.4 for this and hence unboxing it explicitly ! – NINCOMPOOP Feb 17 '12 at 15:46
up vote 6 down vote accepted

You didn't say so, but I assume that runUID is an int.

It's not necessary to call intValue() explicitly on the Integer object returned by runUidsAL.get(i); Java will do this automatically by auto-unboxing.

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But if runUID is an Integer this creates a copy rather than assigning the reference value (Which in this case is kinda silly given that Integer is immutable, and if the value is between -128 and 127 you're going to get the same reference anyway) – Brian Roach Feb 17 '12 at 15:41
    
Oh no - I agree - IMHO the reason for it is to show intent. Explicit is always better. I was just pointing out that there was a slight difference if runUID was an Integer – Brian Roach Feb 17 '12 at 15:50
    
I agree. If runUID was an Integer, it is actually "worst" to call intValue() since java will then create a NEW instance of Integer to wrap the result of intValue() instead of simply adding another reference to the existing Integer instance. – Gilad Feb 17 '12 at 16:05

Java 1.5 and above supports automatic boxing and unboxing, which mans you can assign an Integer to an int without using .intValue().

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Integer is an object, while int is a primitive.

intValue() method converts between the Integer class to its primitive representation.

http://mindprod.com/jgloss/intvsinteger.html

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Yes, but the point is that if runUID is an int you get the same result without calling intValue() because of auto unboxing. – Brian Roach Feb 17 '12 at 15:43
    
That's true, but it makes it more clear when reading the code. Consider the code "if (i!=0)" and the code "if (i)". They are both equal, but it's just faster to understand what's going on. As far as performances - auto-unboxing and manual unboxing are the same, it's just easier to read the code. – Gilad Feb 17 '12 at 15:49
    
As I replied this comment before you deleted it from the other answer, that I agree with. However... that's not what this answer is. – Brian Roach Feb 17 '12 at 15:53

It's there because Integer extends Number.

Number n = new Integer(5);

int i = n.intValue();

That second line may need an int value from n, and may not know if n was instantiated with an Integer or Double.

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You can assign an int to a long, but not an Integer object, for example. On the other hand, the intValue() could give a NullPointerException if the Integer object is null.

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Auto unboxing will throw the same NullPointerException. It also will happily auto unbox to a long; Integer i = 5; long l = i; – Brian Roach Feb 17 '12 at 15:48

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