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I'm very new on my quest for learning JavaScript(only two weeks) so be nice and surprised how far I got.

What I’m trying to do is hit a button and the button will evoke a random image or div to come to the front. I as you see I use the z-index by moving elements from back to front.

I have got far enough to create an alert that tells me it does find the random function just cant get it to activate this function (the changeCombined functions do work fine when I assign it to a button but just can’t get the getImage to run).

I’m unsure if it is possible, and I know there might be a hundred better ways to do this but one step at a time.

function changeZIndex(i,id) {
    document.getElementById(id).style.zIndex=i;
};

var changeCombined1 = function() {
    changeZIndex(-5,"scene1");
    changeZIndex(5,"scene2");
};  

var changeCombined2 = function() {
    changeZIndex(-5,"scene2");
    changeZIndex(5,"scene1");
};

function get_random(){
    var ranNum= Math.floor(Math.random()*2);
    return ranNum;
}

function getImage(){
    var whichImage=get_random();
    var image=new Array()
    image[0]=changeCombined2;
    image[1]=changeCombined1;

    alert(quote[whichImage]);
}
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You aren't actually ever calling the function –  PitaJ Aug 8 '12 at 21:26
    
What is your intention with the image array within getImage()? There's no point in running both of changeCombined1 and changeCombined2 since they update the same elements. And where is the array quote (used in alert(quote[whichImage])) defined? –  nnnnnn Aug 8 '12 at 21:29

4 Answers 4

Try this:

function changeZIndex(i,id) {
    document.getElementById(id).style.zIndex=i;
};

function getImage(){
    var whichImage=Math.floor(Math.random()*2);
    var image=new Array()
    image[0]=function() {
        changeZIndex(-5,"scene2");
        changeZIndex(5,"scene1");
    };
    image[1]=function() {
        changeZIndex(-5,"scene1");
        changeZIndex(5,"scene2");
    };

    image[whichimage]();

    alert(quote[whichImage]);
}
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To invoke a function you should use either apply or call methods.

Have you tried image[whichImage].apply(undefined) instead of your alert ?

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That seems an overly complex way of saying image[whichImage](), especially if you're just going to pass in undefined. –  nnnnnn Aug 8 '12 at 21:27

You are not calling the changeCombined() functions at all.

If you are trying to call the functions, you have to use ()

image[0]=changeCombined2();
image[1]=changeCombined1(); 

What you have just the functions themselves to image[0] and image[1]. So after

x = changeCombined2;

x will hold a reference to the changeCombined2 function itself. So now if you say x() (or in your case image[0]()), it will call changeCombined2.

() will call the functions and will put the return value of the function into the array elements.

Note: since the functions do not explicitly return anything, image[0] and image[1] will hold undefined.

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2  
...except changeCombined1() and changeCombined2() don't return anything useful... –  Cory Aug 8 '12 at 21:23
1  
@Cory - Sure they do, they return undefined. –  nnnnnn Aug 8 '12 at 21:25
    
@nnnnnn: Psych! Edited comment. –  Cory Aug 8 '12 at 21:27

Thanks for all the help to get past my road block, the rookie mistake of not calling my funcions was the biggest issue. I was able montage the comments to create this version that works as expected.

function changeZIndex(i,id) { 
    document.getElementById(id).style.zIndex=i;}; 

function getImage(){ 
    var whichImage=Math.floor(Math.random()*2); 

    var image=new Array() 

    image[0]=function() { 
    changeZIndex(-5,"scene2"); 
    changeZIndex(5,"scene1"); 
    }; 

    image[1]=function() { 
    changeZIndex(-5,"scene1"); 
    changeZIndex(5,"scene2"); 
    }; 

    image[whichImage].apply(undefined);}; 
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