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I would like to test whether a variable is between two other variables, if this is unclear look at my code. This code works, I am just looking for a shorter and more efficient way of performing the same thing.

public boolean isBetween(double test, double n1, double n2){
        double lowN = n1 < n2 ? n1 : n2;
        double highN = n1 > n2 ? n1 : n2;
        if(n1 == n2 && test == n1){
            return true;
        }
        if(test >= lowN && test <= highN){
            return true;
        }
        return false;
    }

Currently, I use two ternary operators to define which variable is lower and which is higher and then I see whether the test variable is between them

4
  • 1
    return test >= Math.min(n1, n2) && test <= Math.max(n1, n2);
    – shmosel
    Commented Jun 23, 2017 at 3:05
  • Having said that, this is off-topic. It belongs on codereview.stackexchange.com - and that's why I didn't submit an answer. Commented Jun 23, 2017 at 3:12
  • 1
    Here's a more elegant and more intuitive solution (if you don't want to use Math.min and Math.max). - return test >= n1 && test <= n2 || test >= n2 && test <= n1; Commented Jun 23, 2017 at 3:21
  • Dawood ibn Kareem, I wish I could plus one a comment, thanks so much!
    – Peake
    Commented Jun 23, 2017 at 3:36

3 Answers 3

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You can use Math.max() and Math.min():

private static boolean isBetween(double test, double d1, double d2) {
    return test >= Math.min(d1, d2) && test <= Math.max(d1, d2);
}
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Alternative solution:

public boolean isBetween(double test, double n1, double n2) {
    return n1 > test ? n2 > test && n2 < n1 : n2 > n1 && n2 < test;
}

that said I actually like the other solution more personally, more readable; referring to the use of Math.min() and Math.max()

1

This part is not even needed. It should work without it also.

    if(n1 == n2 && test == n1){
        return true;
    }

Also using Math.min() and Math.max() is essentially giving same efficiency as your code. You can use them if you want to make your code short or look more readable.

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