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That's my while loop, and the question is, how can i get a true condition?

s and t are Integer variables

while (s<=t && s>=t && s!=t )

EDIT

tl;dr the original question stated:

s and t are int variables (and OP commented they are not Integer variables)

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2  
is this some kind of brain teaser? also, why would not a simple if do for the sake of illustration rather than while? – amphibient Dec 10 '12 at 18:25
2  
Probably related to atomicity, multi threading, synchronization? – Prasanth Dec 10 '12 at 18:26
1  
and this is pretty pretty hard to happen @Pshemo :) – HericDenis Dec 10 '12 at 18:29
1  
@HericDenis true, but it is not impossible :) – Pshemo Dec 10 '12 at 18:31
3  
@ThomasNyiri you say "and yes these variables are int, not Integer" and than accept the answer that uses Integer? – jlordo Dec 10 '12 at 18:41
up vote 2 down vote accepted

By boxing the primitive value in an object:

    Integer s = new Integer(5);
    Integer t = new Integer(5);

    boolean rslt = (s <= t && s >= t && s !=  t);

    System.out.println("Result = " + rslt);

The rslt boolean here will indeed evaluate to true.

However, the following would return false:

s <= t && s >= t && !s.equals(t)

it is because in Java, for objects, == means that it is indeed the same instance, while equals is left up to be implemented by every class and typically means that the core values of the compared objects are the same -- while not necessarily being the same class instance (AKA object). The > and < for boxed primitives are evaluated agaist the primitive value, however == is checking the object identity.

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Never! s and t are int variables, so when s == t the third operand will fail, when s != t one of the first two operands will fail.

Possible, but unlikely, if they are declared as volatile int s, t; in a multi-threaded application.

EDIT

Question has been modified. Now s and t are Integer variables, which makes the answers referring to Integer objects more relevant.

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Downvoters, care to comment, so I can improve my answer? – jlordo Dec 10 '12 at 18:33
    
certainly: stackoverflow.com/questions/13806883/… – amphibient Dec 10 '12 at 18:43
1  
@foampile This answer was from when the OP said they were int not Integer, so this was correct when it was posted. – Windle Dec 10 '12 at 19:00

It actually is possible:

public class EqualsTest
{
    public static void main(String[] args)
    {
        Integer x = new Integer(Integer.parseInt(args[0]));
        Integer y = new Integer(Integer.parseInt(args[1]));

        if(x <= y && y <= x && y !=x)
        {
            System.out.println("equal");
        }
        else
        {
            System.out.println("not equal");
        }
    }
}

Compiling this and running it with two equal integer arguments produces:

$ java EqualsTest 5 5
equal

The reason that this works is due to autoboxing and the fact that, for objects, == only checks whether or not the references are the same (which, in the case above, they are not).

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4  
What you write is correct, but OP clearly states his variables are int, not Integer. – jlordo Dec 10 '12 at 18:37
    
@jlordo -- i don't see that anywhere in the OP... am i missing something? – amphibient Dec 10 '12 at 18:48
    
@foampile check the comments! > " these variables are int, not Integer." – Prasanth Dec 10 '12 at 18:48
1  
And a waste of 28 minutes on a pretty straight forward question. – Prasanth Dec 10 '12 at 18:53
1  
OK, i see now where he says it and explicitely disclaims it from being a primitive. i still think he may be missing the requirement of the assignment. if indeed it must be an int, i have no solution. also, the int vs Integer ambiguity should be edited into the OP for the ease of consumption, rather than scanning through comments in fine print – amphibient Dec 10 '12 at 18:54

Never man, no way.

s<=t && s>=t returns true if s == t, and s == t && s != t returns false forever.

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@ThomasNyiri, you should study boolean algebra. – HericDenis Dec 10 '12 at 18:31

You cant the only way first two conditions result true is when s is equal to t and the third conditions negates this fact.

Hence i dont think its possible

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the trick is, == is not the same as .equals(). Sometimes things that are not == can be .equals()... – Bill K Dec 10 '12 at 18:40

If the two values are accessible by multiple threads (either static, or members variables of an object shared between multiple threads), you could do this:

Thread 1:

s = 1; // 1
t = 1; // 2
t = 2; // 5

Thread 2:

This is equivalent to your expression but easier to label.

boolean result = s <= t; // 3
if(result) {
    result = s >= t; // 4
}
if(result) {
    result = s != t; // 6
}

Assuming everything happens in the order given by the commented numbers, then at the end of thread 2's code, result will be true.

So, thread 1 sets s and t to be equal, then thread 2 checks that they're equal, then thread 1 sets them to be not equal, then thread 2 checks that they're not equal.

There are more complicated situations where this could be true, but this is the simplest one I could think of.

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