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Integer == int allowed in java

What is the difference between the following two statements

Long l1 = 2L;
if(l1 == 2)
    System.out.println("EQUAL");                         
if(l1.longValue() == 2)
    System.out.println("EQUAL");

They both are giving same result "EQUAL".But my doubt is Long is object. How is it equal?

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marked as duplicate by assylias, Xavi López, Donal Fellows, Anand, Ravi Gadag Feb 1 '13 at 10:25

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3  
This is due to auto-unboxing. –  assylias Feb 1 '13 at 8:41
    
It's because of auto boxing and unboxing feature of Java –  Pradeep Simha Feb 1 '13 at 8:41
    
can u explain clearely –  PSR Feb 1 '13 at 8:41
    
or is there any useful link –  PSR Feb 1 '13 at 8:42
    
ok ok sorry. i saw now –  PSR Feb 1 '13 at 8:42

2 Answers 2

up vote 5 down vote accepted

As already pointed out in the comments, when doing

if(l1 == 2)

Long l1 gets automatically unboxed to its primitive type, long. So the comparison is between long and int.

In the second case, l1.longValue() will return the long value, as a primitive, of the Long represented by the Long object, so the comparison will be again between long and int. Answering your comment, take a look at What is the main difference between primitive type and wrapper class?

The link given in the comments about autoboxing covers this subject quite well.

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ok .Now i understood.thank u –  PSR Feb 1 '13 at 8:51

This behaviour is explained by widening and boxing.

In the first example,

if(l1 == 2)

what happens is as follows:

1: The compiler notices that you are comparing a wrapper (Long) with a primitive value (int), so it boxes the primitive, resulting in:

if (l1 == new Integer(2))

since 2 is an int (it lacks the 'L' at the end).

2: The compiler now notices that we are comparing a Long with an Integer, so it widens the Integer to a Long, resulting in:

if (l1 == new Long(new Integer(2))

3: Now we are comparing two Longs.

The other case is simpler, here the result is simply:

if (2L == 2)

comparing the primitive values, which is allowed even though they are different types.

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Not sure about your explanation about the first example. I think it's unboxing of l1 that's happening here, not boxing of 2 into Integer. If it was that way, the only thing that could explain the == operator returning true would be caching, which wouldn't be a valid explanation if it was doing new Integer(2) anyway. Also, doing new Long(123456) == 123456 returns true, and it seems to be a value out of the caching range. –  Xavi López Feb 1 '13 at 10:12

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