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main(){

Integer i1 = 500;

Integer i2 = 500;

System.out.println(i1 == i2);  // O/P is "**false**"

String s1 = "Hello";

String s2 = "Hello";

System.out.println(s1 == s2);  // O/P is "**true**"

} // End of main.

I am not able to figure out why the output is different. As far as I know s1, s2 will point to the same object on the heap. So their reference address are same. Similarly I think Integer is also the same. But it is not. Why is it different?

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2  
Why do you think that "s1, s2 will point to the same object on the heap"? –  user647772 Aug 8 '12 at 12:46
3  
Possible duplicate with an answer: stackoverflow.com/questions/3637936/java-integer-equals-vs stackoverflow.com/a/3637974/227755 The JVM is caching Integer values. == only works for numbers between -128 and 127 –  nurettin Aug 8 '12 at 12:48
    
@Tichodroma B'coz s1, s2 are declared with out using new keyword. So same reference will be given to both s1, s1; –  Che Aug 8 '12 at 12:53
    
@pwned Yeah thank you very much. I know that. But still can you tell me why is that so? –  Che Aug 8 '12 at 12:55
    
@Amarnath Are you asking why JVM only caches byte sized integers? I didn't see any indication of that in your question. If that is what you wanted to ask in the first place, I suggest you modify the question before you get more answers. –  nurettin Aug 8 '12 at 13:00

5 Answers 5

up vote 8 down vote accepted

It has been already answered here: java: Integer equals vs. ==

Taken from this post: The JVM is caching Integer values. == only works for numbers between -128 and 127. So it doesn't work with 500 in your example.

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Try -XX:+AggressiveOpts and similar options and 500 might work. -129 will never work. –  Peter Lawrey Aug 8 '12 at 12:59
1  
depends on how you define 'work' :) my suggestion is just not to do this at all –  Joeri Hendrickx Aug 8 '12 at 13:01
1  
And as a side note, it's working for string here, because you're using a string literal in your code, which ends up getting interned, which means that both variables will point to the same string instance. –  Matt Aug 8 '12 at 15:22

Use string1.equals(string2); //Used for String values

Instead of using string1 == string2; //Used for integer values

Hope this helps.

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The answer in this question should help explain it: When comparing two Integers in Java does auto-unboxing occur?

Pretty much you answered your own question. The "==" is not only comparing the reference points in strings, but it seems to do the same thing with integers.

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The way you specified "Hello" does no heap allocation. Instead, "Hello" as a static compile-time constant will be outsourced to the specific section of the executable and referenced. Thus, both references will point to the same address.

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Yes agreed. But what is the case with Integer? –  Che Aug 8 '12 at 12:53
1  
With Integer, the opposite happens (outside the -127 - 128 cache range mentioned above): You create two separate Integer objects i1 and i2 with the same value, but different locations in memory. Thus, == will answer "false", but .Equals() will answer "true". –  ThePadawan Aug 8 '12 at 14:07

So there is Java String Pool and here s1 and s2 actually the same links. In case of Integers, there is also pool but it exists only for Integers -127 till 128

So if you have

Integer i1 = 100;

Integer i2 = 100;

Then i1==i2 will be true

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Yaa I know that it will be true until both of the Integer object values are < 128. But why is that? –  Che Aug 8 '12 at 12:50
    
The same thing, there is pool in PermGen for integers like that. –  Alexey Ogarkov Aug 8 '12 at 12:51
    
You can look at owasp.org/index.php/… for reference –  Alexey Ogarkov Aug 8 '12 at 12:52

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