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How can I craft a one-liner return line that also has conditionals? For example, if I want to make a 'return the median' one:

//assuming sorted input array
return ((inputArray.length % 2) && (inputArray[int(inputArray.length/2)] + inputArray[int(inputArray.length/2)+1]) / 2) || inputArray[int(inputArray.length/2)+1];

Is there anyway to make this work?

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I'm all about one lining code when it makes the concept I'm trying to express more readable/understandable. But that doesn't seem to be what you are going for here... So, I gotta ask: dear god why? –  32bitkid May 24 '12 at 11:09
1  
I believe that a 'find the median' function won't need to be changed, and can be easily tested for bugs. One line will safe space. Also, I just want to know how to do it. –  gladsocc May 24 '12 at 12:13

3 Answers 3

up vote 3 down vote accepted

You should use the ternary operator:

return (inputArray.length % 2 != 0) ? (inputArray[int(inputArray.length/2)] + inputArray[int(inputArray.length/2)+1]) / 2 : inputArray[int(inputArray.length/2)+1];

Which is equivalent to:

if (inputArray.length % 2 != 0) {
    return (inputArray[int(inputArray.length/2)] + inputArray[int(inputArray.length/2)+1]) / 2;
} else {
    return inputArray[int(inputArray.length/2)+1];
}

If you want to use only && and ||, you can use the following (which is not really a good programming style):

((inputArray.length % 2 != 0) || return inputArray[int(inputArray.length/2)+1]) && return (inputArray[int(inputArray.length/2)] + inputArray[int(inputArray.length/2)+1]);

Which is equivalent to:

(condition || return value2) && return value1;

So, thanks to the short-circuit evaluation of boolean operators:

  • if condition is true, return value2 is not evaluated and return value1 will be executed.
  • if condition is false, return value2 will be evaluated.
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I would go for a more readable version without repetitions, but with some variables.

var index:int = int(inputArray.length / 2);
var item1:Number = inputArray[index];
var item2:Number = inputArray[index + 1];
var median:Number = (item1 + item2) / 2;

return (inputArray.length % 2 != 0) ? median : item2;
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Please try with modified conditions:

return ((inputArray.length % 2) && (((inputArray[int(inputArray.length/2)] + inputArray[int(inputArray.length/2)+1]) / 2) || inputArray[int(inputArray.length/2)+1]));
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