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Scanner input = new Scanner(System.in);
selection = input.nextInt();
while (selection != 1 || selection != 2 || selection != 3 || selection != 4){
    System.out.println("*");
    selection = input.nextInt(); 
}

The above code just goes into a loop no matter what I enter it just repeats itself. I'm probably making a silly mistake somewhere but I can't see it probably due to lack of sleep. Any help is welcome, thanks.

All the or signs have been changed to && signs but it still keeps looping?

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When should the loop exit? When you changed all || by && it will exit e.g. when selection is 1 –  MrSmith42 Jan 26 '13 at 22:59

3 Answers 3

up vote 4 down vote accepted

replace

while (selection != 1 || selection != 2 || selection != 3 || selection != 4)

by

while (selection != 1 && selection != 2 && selection != 3 && selection != 4)

selection != 1 || selection != 2is alwaystruebecauseselection` cannot be not 1 and be not 2.

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+1 Demorgans therom. One should read the basics. –  Subir Kumar Sao Jan 26 '13 at 22:51
    
My mistake, sorry. Thanks! –  user1861156 Jan 26 '13 at 22:53
    
@subirkumarsao that's not DeMorgan's Law. –  Matt Ball Jan 26 '13 at 22:54
    
Although it still doesn't work.. –  user1861156 Jan 26 '13 at 22:55
    
Depends on wwhen you want to leave the loop. My &&-Version leaves the loop, if selection is 1,2,3 or 4. –  MrSmith42 Jan 26 '13 at 22:58

Your condition is always true. For any number you pick, it's always not 1 or not 2. 1 is equal to 1, but it's not equal to 2, so the condition is true, likewise 2 is not equal to 1 so the condition is true. Every other number isn't equal to 1 or 2, so the condition is still true.

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while will execute the block unless the expression false. selection != 1 || selection != 2 is always true.

I think you want to change != to == or better yet

while (0 < selection && selection <= 4)
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