Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
public class Main { 
    /** 
      * @param args the command line arguments */ 
    public static void main(String[] args) { 
        // TODO code application logic here
        int a1 = 1000, a2 = 1000; 
        System.out.println(a1==a2);//=>true 
        Integer b1 = 1000, b2 = 1000;
        System.out.println(b1 == b2);//=>false 
        Integer c1 = 100, c2 = 100; 
        System.out.println(c1 == c2);//=>true 
    }

}

Why is b1 == b2 false and c1 == c2 true?

share|improve this question

7 Answers 7

Read this.

Java uses a pool for Integers in the range from -128 to 127.

That means if you create an Integer with Integer i = 42; and its value is between -128 and 128, no new object is created but the corresponding one from the pool is returned. That is why c1 is indeed identical to c2.

(I assume you know that == compares references, not values, when applied to objects).

share|improve this answer
    
thank Felix Kling very much . I understood this code –  OOP Jul 28 '10 at 11:03
    
That doesn't explain why a1==a2. –  simon Jul 28 '10 at 12:56
1  
The question was about b1==b2 and c1==c2, if I'm not mistaken. –  Justin Ardini Jul 28 '10 at 13:07
4  
a1==a2 because they are primitive "int" types, not the Integer object type –  Matt N Jul 28 '10 at 13:11
    
The range is between - 128 and 127. –  Chasmo Jan 16 '13 at 14:17

The correct answers have already been given. But just to add my two cents:

Integer b1 = 1000, b2 = 1000;

This is awful code. Objects should be initialized as Objects through constructors or factory methods. E.g.

 // let java decide if a new object must be created or one is taken from the pool
Integer b1 = Integer.valueOf(1000);

or

 // always use a new object
 Integer b2 = new Integer(1000);

This code

Integer b1 = 1000, b2 = 1000;

on the other hand implies that Integer was a primitive, which it is not. Actually what you are seeing is a shortcut for

Integer b1 = Integer.valueOf(1000), b2 = Integer.valueOf(1000);

and Integer only pools objects from -127 to 127, so it will create two new Objects in this case. So although 1000 = 1000, b1 != b2. This is the main reason why I hate auto-boxing.

share|improve this answer
    
Thank seanizer very much ! –  OOP Jul 28 '10 at 11:03
    
Why the downvote? –  Sean Patrick Floyd Mar 6 '11 at 19:29

Because Integer is for a few low numbers like enumeration so there is always same instance. But higher numbers creates new instances of Integer and operator == compares their references

share|improve this answer

You can find the answer here:

http://stackoverflow.com/questions/1995113/strangest-language-feature in the 6th answer.

Edit: sorry not exatly the answer. The point is that == compares references, not values when you use it with Integer. But with int "==" means equals.

share|improve this answer
  public static Integer valueOf(int i) {
      final int offset = 128;
      if (i >= -128 && i <= 127) { // must cache
          return IntegerCache.cache[i + offset];
      }
       return new Integer(i);
    }

Because of this you true in one case, and false in other!

share|improve this answer
    
+1 for this quote from sources. Also the first answer with correct range! –  Chasmo Jan 16 '13 at 14:20

The answer you want is here

share|improve this answer
    
While this link may answer the question, it is better to include the essential parts of the answer here and provide the link for reference. Link-only answers can become invalid if the linked page changes. –  Woot4Moo Nov 14 '12 at 5:46

If autounboxing had worked also when doing equality checking with the '==' operator you could write:

    Long notNullSafeLong1 = new Long(11L)
    Long notNullSafeLong2 = new Long(22L)
    if ( notNullSafeLong1 == notNullSafeLong2) {
      do suff

This would require implementing an override for == so that null==someLong is false and the special case Null==Null is true. Instead we have to use equal() and test for null

    Long notNullSafeLong1 = new Long(11L)
    Long notNullSafeLong2 = new Long(22L)
    if ( (notNullSafeLong1 == null && notNullSafeLong2 == null) || 
      (notNullSafeLong1 != null && notNullSafeLong2 != null & 
        notNullSafeLong1.equals(notNullSafeLong2)) {
      do suff    

This is alittle more verbose than the first example - if autounboxing had worked for the '==' operator.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.