105

I have written a piece of Java code which is running in an infinite loop.

Below is the code:

public class TestProgram {
    public static void main(String[] args){
        Integer i = new Integer(0);
        Integer j = new Integer(0);

        while(i<=j && j<=i && i!=j){
            System.out.println(i);
        }
    }
}

In the code above, while seeing the condition in the while loop, at first it looks like that program will not go inside the while loop. But actually it is an infinite loop and keeps printing the value.

What is happening here?

10
  • 8
    Simple answer is i<=j && j<=i && i!=j this condition always evaluates to true. Just take a piece of paper and evaluate you will catch it :) – Pradeep Simha Sep 14 '13 at 17:44
  • 4
    The way you are creating integer is incorrect. Use 'compareTo' – nachokk Sep 14 '13 at 17:44
  • 7
    If you never change i or j, when would you expect the loop to terminate? – Fred Larson Sep 14 '13 at 17:44
  • 33
    @PradeepSimha For simple int values, this would always yield false. From i<=j and j<=i you can conclude, that i == j, which contradicts the last term. Thus the whole expression evaluates to false and the while would not be entered. Key point is the object identity here! – Sirko Sep 14 '13 at 17:48
  • 4
    As an aside, this is puzzle 32 in the book Java Puzzlers: Traps, Pitfalls, and Corner Cases. – Cyanfish Sep 19 '13 at 15:48

10 Answers 10

189
  • i <= j is evaluated to true, because auto unboxing happens for int comparisons and then both i and j hold the default value, 0.

  • j <= i is evaluated to true because of the above reason.

  • i != j is evaluated to true, because both i and j are different objects. And while comparing objects, there isn't any need of auto unboxing.

All the conditions are true, and you are not changing i and j in loop, so it is running infinitely.

14
  • 10
    can you please explain, why != is checking for the memory index of reference objects and <= is checking for the un-boxed value of Integer ??.. why there is such difference between these operator ? – Punith Raj Sep 14 '13 at 18:02
  • 41
    @PunithRaj < & > operators work on primitives and not on objects, hence the auto unboxing happens for these operators. But == and != operators can be used for objects comparison also so no need of unboxing here, hence objects are compared. – Juned Ahsan Sep 14 '13 at 18:05
  • 14
    Ah, the hidden dangers of implicit boxing/unboxing!! – Hot Licks Sep 14 '13 at 23:13
  • 3
    Stack Overflow should just add a new tag, "Auto-unboxing was the biggest mistake ever made in Java". :-). Except for writers of the Java Puzzler books. Use it to tag questions like these. – user949300 Sep 15 '13 at 3:30
  • 4
    note that Integer.valueOf(0) == Integer.valueOf(0) is always evaluated to true because in this case the same object is returned (see IntegerCache grepcode.com/file/repository.grepcode.com/java/root/jdk/openjdk/…) – Vitalii Fedorenko Sep 15 '13 at 18:13
41

Because you are comparing

  • 0 < = 0 (true) // unboxing

  • 0 > = 0 (true) // unboxing

  • reference != secondReference (true) as you are creating objects, not a primitive comparison. So it evaluates to while(true) { // Never ending loop }.

1
  • 2
    Ohh! hidden Dragon of auto UNBOXING ... Good Explanation . – HybrisHelp Oct 8 '13 at 14:09
17

The integer objects are different. It is different from the basic int type.

See this answer: How to properly compare two Integers in Java?

The i != j part is true, which you were expecting to be false.

2
  • While true, it doesn't matter here nor does it answer the question. – Kon Sep 14 '13 at 17:45
  • 6
    @Kon: In fact this is the answer. Conditions #1 and #2 evaluate to true because of autoboxing. In case of #3 autoboxing does not apply and comparison takes place on object (memory location) level. – home Sep 14 '13 at 17:47
2

There are two different cases which we have to understand first,

case 1:

        Integer i = new Integer(10);
        Integer j = new Integer(10);

        System.out.println((i<=j && j<=i && i!=j));
        System.out.println(i!=j);

case 2:

        Integer i = 10;
        Integer j = 10;

        System.out.println((i<=j && j<=i && i==j));
        System.out.println(i==j);

both are different, as

in case 1: i!=j will be true because both referencing to two different object in heap and can't be same. But

in case 2: i==j will be true because both 10 are integer literals and Java maintains pool for Integer literals which have value (-128 <= X <= 127). So, in this case 10<=127 results true, So both will have reference to same object.

1

The loop is not ending because your condition is true( i != j is true because there are 2 different objects, use Integer.valueOf instead) and inside the loop the values are not changing so your condition remains true forever.

1

Perhaps the reason is that both 'i' and 'j' are objects, and object comparison is not the same as object reference comparison. Please consider using !i.equals(j) instead of i!=j

1

The integer objects are different. It is different from the basic int type. so you can just do like that. what you do it's just compare the object and of course the result is true.

1

Integer a = new Integer(0); Integer b = new Integer(0);

The <= and >= comparisons will use the unboxed value 0, while the != will compare the references and will succeed since they are different objects.

Even this will also works i,e

Integer a = 1000; Integer b = 1000;

but this doesnot :

Integer a = 100; Integer b = 100;

The reason is because Integer internally uses caching for Integer objects between -128 and 127 and return instances from that cache for the range it covers. I am not sure but I guess you can also change its maximum value in package "java.lang.Integer.IntegerCache.high".

For better understanding check url : https://www.owasp.org/index.php/Java_gotchas#Immutable_Objects_.2F_Wrapper_Class_Caching

0

The program keeps on displaying the same value of i because you aren't incrementing or decrementing either the value of i or j. The condition in the for always keeps evaluating to true, so it is an infinite loop.

1
  • I think the question was more about the i!=j part which surprisingly evaluates to true and not the <= comparisons. – Soravux Sep 15 '13 at 2:46
-3

you have to know its a bit different in && this and this & when you use && then when first condition is true then it check second condition if its false then it not checked third condition because in & operator if one condition is false all of the statement is false if use || then if it see true then it return true in your code because i and j is equal first and second condition are true then in third condition it will be false because they are equal and while condition is false .

1

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