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Before I start, please don't ask why I want to do this in javascript, just know that I need to and if it makes you feel any better, I simply want to.

So, say I've got an array with (this number is arbitrary, real applications would be in the 300's or more, however, I selected it because it's an odd number) 19 indexes in an array and I want to, for example, put those indexes into another array in the exact same order using two asynchronous loops to do it (I'm aware this can simply be done by doing arrayOne = arrayTwo; I'm just using arrays for this example.)

How could I guarantee the values being put into the second array are in the right order? that is to say, what is the logic or general idea to do this? (code examples are also welcome, I am also at liberty to use jquery if need be.)

Stopping or halting to wait for one loop to be done would of course be counter intuitive to using asynchronous loops because they would be working at the same time to process this task faster.

Here is a JSfiddle that doesn't work in its current state but shows the basic concept of what I'm talking about (probably works if you take it out of jsfiddle and put it in a real .js file) I'm pretty sure this code shows how to construct the loops and a check for when both loops are complete but I have no idea how to make sure they are putting the variables in the right order.

I have more than likely not explained my self very well and I intend to revise and edit this question in a few hours if there are no responses. If you require any more details, please ask me in the comments and I will try to elaborate on what I mean. Thanks.

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3  
Stopping or halting to wait for one loop to be done would of course be counter intuitive to using asynchronous loops because they would be working at the same time to process this task faster. Since Javascript is single threaded, the loops won't be working at the same time. –  Matt Burland Jun 10 '13 at 20:46
    
i must be really tired. of course javascript is single threaded... the second loop would be running sequentially, wouldn't it.. Gah -__- sorry, my bad. –  Partack Jun 10 '13 at 20:50
    
Does loop2 know how many items were processed by loop1? And does each loop process its own items in order or is it possible that even within one asynchronous loop, the item order is not maintained? –  basilikum Jun 10 '13 at 21:02
    
I think it would help if you posted code that runs but returns the results in the wrong order. Your constraints seem so arbitrary that it's hard to guess if a potential solution would violate them or not. –  Riley Lark Jun 10 '13 at 21:03
    
I've fixed the few syntax errors and your fiddle works fine. Why do you think the order would not be guaranteed by your loops, they're copying the same indices to the same indices only (instead of pushing to the end in random order)? –  Bergi Jun 10 '13 at 21:16

1 Answer 1

up vote 0 down vote accepted

Well an obvious solution is to map the items in your original array into wrappers that store the original index, then after everything is done, sort the result array according to the stored indices and unwrap the data.

arrayOne = ["#1", "#2", "#3", "#4", "#5", "#6", "#7", "#8", "#9", "#10", "#11", "#12", "#13", "#14", "#15", "#16", "#17", "#18", "#19"];

var wrapped = arrayOne.map( function(v, i){
    return {
        data: v,
        index: i
    }
});

...

if(loopOneDone && loopTwoDone){
    //Unwrap

    var unwrapped = arrayTwo.sort(function(a, b){
        return a.index - b.index;
    }).map( function(v) {
        return v.data;
    });


    for (i=0;i<unwrapped.length;i++){
        document.getElementById("p1").innerHTML= unwrapped[i] + "<br />" ;   
    }    
    console.log('All done!');

    //Code ends here
}
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But does that make sense? Sorting an irregularly built array will take longer than it would have lasted to just copy them in order synchronously. –  Bergi Jun 11 '13 at 12:59
    
@Bergi well I was making this code for the case where you can't copy them in-order. It seems the OP can copy them in-order, so it's not useful for him. But could be for others. –  Esailija Jun 11 '13 at 13:10

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