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Here they are the same instance:

Integer integer1 = 127;
Integer integer2 = 127;
System.out.println(integer1 == integer2);  // outputs "true"

But here they are different instances:

Integer integer1 = 128;
Integer integer2 = 128;
System.out.println(integer1 == integer2);  // outputs "false"

Why do the wrapper objects share the same instance only within the value 127?

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5 Answers 5

Because it's specified by Java Language Specification.

JLS 5.1.7 Boxing Conversion:

If the value p being boxed is true, false, a byte, or a char in the range \u0000 to \u007f, or an int or short number between -128 and 127 (inclusive), then let r1 and r2 be the results of any two boxing conversions of p. It is always the case that r1 == r2.

Ideally, boxing a given primitive value p, would always yield an identical reference. In practice, this may not be feasible using existing implementation techniques. The rules above are a pragmatic compromise. The final clause above requires that certain common values always be boxed into indistinguishable objects. The implementation may cache these, lazily or eagerly. For other values, this formulation disallows any assumptions about the identity of the boxed values on the programmer's part. This would allow (but not require) sharing of some or all of these references.

This ensures that in most common cases, the behavior will be the desired one, without imposing an undue performance penalty, especially on small devices. Less memory-limited implementations might, for example, cache all char and short values, as well as int and long values in the range of -32K to +32K.

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Note that the JLS specifies the minimum cache/intern range, not the maximum (see last sentence) ... so it's technically "by implementation" ;-) –  user166390 Dec 8 '11 at 7:38
    
why they case it ? I can't get it –  niiraj874u May 15 at 7:44
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The source of java.lang.Integer:

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);
    }

Cheers!

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5  
The recent version of Java 6 support changing the maximum cache value to greater than 127. –  Peter Lawrey Feb 25 '11 at 12:31
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BTW you can shorten your code to

System.out.println("Integer 127 == " + ((Integer) 127 == (Integer) 127));
System.out.println("Integer 128 == " + ((Integer) 128 == (Integer) 128));

for(int i=0;i<5;i++) {
    System.out.println(
     "Integer 127 system hash code " + System.identityHashCode((Integer) 127)
     + ", Integer 128 system hash code "+System.identityHashCode((Integer) 128));
}

prints

Integer 127 == true
Integer 128 == false
Integer 127 system hash code 1787303145, Integer 128 system hash code 202703779
Integer 127 system hash code 1787303145, Integer 128 system hash code 1584673689
Integer 127 system hash code 1787303145, Integer 128 system hash code 518500929
Integer 127 system hash code 1787303145, Integer 128 system hash code 753416466
Integer 127 system hash code 1787303145, Integer 128 system hash code 1106961350

You can see that 127 is the same object each time, whereas the object for 128 is different.

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Because small values in the range [-128, 127] are cached and bigger values are not.

To wrap integers, Java uses http://download.oracle.com/javase/6/docs/api/java/lang/Integer.html#valueOf%28int%29

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may i know the meaning of cached –  saravanan Feb 25 '11 at 12:52
    
It is just an array created and initialized when Integer class is loaded. –  Kru Feb 26 '11 at 17:39
    
why they case it ? I can't get it –  niiraj874u May 15 at 7:47
    
Small numbers are often used (for example in calculations), this prevents the JVM from allocating a new object for example every time {{x + 1}} is done. –  Kru May 15 at 14:53
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Additionally to the other answers I want to add that == compares the object references only. Use .equals() instead:

Integer integer1=128;
Integer integer2=128;
if(integer1.equals(integer2))
  System.out.println(true);
else
  System.out.println(false);
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