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I'm a TA and a student came in asking why the following code didn't swap the first 2 elements in an array and instead resulted as undefined. Here's the code the student showed me:

var swapFirstTwoElementsOf = function (a) {
    a = [a[1],a[0]].concat(a.slice(2, a.length));
}

Why does this return undefined?

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1.4 I believe. I'm using the shell here: squarefree.com/shell/shell.html –  Joe Crawley Nov 15 '12 at 1:04

1 Answer 1

up vote 4 down vote accepted

You need to return the variable. The local reference is reassigned, but the original variable a is not. You need to do something like

var swapFirstTwoElementsOf = function (a) {
    return [a[1],a[0]].concat(a.slice(2, a.length));
}

var myArray = [0, 1, 2, 3];
myArray = swapFirstTwoELementsOf(myArray);

Previously, the function was evaluating to undefined because it wasn't returning anything.

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wow, can't believe I didn't see that, Thanks! –  Joe Crawley Nov 15 '12 at 1:03
1  
No problem. I often spend ages on a problem ,finally ask SO, then find some silly solution. Cheers! –  Raekye Nov 15 '12 at 1:04
    
Note that var tmp = a[0]; a[0] = a[1]; a[1] = tmp; would swap the first two elements of the original array without the function needing to return anything - you can't reassign the original variable from inside the function, but you can modify the object it already references. (Though I realise the code was a question from a student so suggesting alternative methods may or may not be appropriate.) –  nnnnnn Nov 15 '12 at 1:13
    
If I noticed the student/TA part I would claim to be the student to mess around! –  Raekye Nov 15 '12 at 4:15

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