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Hi I was sorting an array with sort and don't know why/how/the order in which JavaScript is executing the code.

code below

arr = ["cc", "aa", "dd", "bb"];

console.log(arr);

fun = function() {
    var re = arr;
    console.log(re);

    re = re.sort();
    console.log(re); 
};


fun();

I know that the sort() method changes the original array object but why when I console.log before the sort method am I not getting the original order of the array?

Can someone please explain JavaScript's execution order? I thought it executed top to bottom.

Thanks.

update: JSfiddle below

http://jsfiddle.net/BPNWC/

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When I copy/paste your code above into the Chrome console, I get the output you're expecting (original array order). ["cc", "aa", "dd", "bb"] ["cc", "aa", "dd", "bb"] ["aa", "bb", "cc", "dd"] –  Scottie Oct 31 '13 at 9:19
    
I am testing in JSfiddle and I get as described above and thus my original question see here. jsfiddle.net/BPNWC –  user1831677 Nov 1 '13 at 7:48
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2 Answers 2

your first console.log prints out ["cc", "aa", "dd", "bb"]

your second console.log prints out ["cc", "aa", "dd", "bb"] because nothing changed

your third console.log prints out [ 'aa', 'bb', 'cc', 'dd' ] because sort(); will 'sort' the array in alphabet order.

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Yes that is what I was expecting to see as well, but I can't explain why it is not happening here. jsfiddle.net/BPNWC –  user1831677 Nov 1 '13 at 7:51
    
I changed your fiddle here, because JSfiddle doesn't have a console (or I can't find it). So I changed all the console.log(); to alert(); –  aaldim Nov 1 '13 at 8:45
    
Yes it does have a console, check my fiddle. Turn on firebug. Thanks. –  user1831677 Nov 2 '13 at 6:44
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If you want to inspect the intermediary execution steps of the 'Array.join' method, you can pass a comparer and inspect the values it recieves:

arr.sort(function(a, b) {
    console.log([a, b], arr);             // log both parameters and the array
    return (a==b ? 0 : (a < b ? -1 : 1)); // return re comparison result
});
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