Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This is a very simple question/problem, and I can easily work around it, but since I'm learning javascript I was very eager to know WHY exactly this particular problem is happening.

$("#go").click(function() {
    $("p").append(array[x] + " ")
    functionlist[array[x]]()
    x++
})​

This does not work as I expect it to. I want it to write the current content of array, perform a simple animation that is associated with a certain function name, and then increment x. Everything works, except it doesn't increment x.

If I do this:

$("#go").click(function() {
    $("p").append(array[x] + " ")
    //functionlist[array[x]]()
    x++
})​

x is incremented successfully.

So my question is, why does this happen?

Here is a link to a jsfiddle that I am using: http://jsfiddle.net/mxy6N/3/

share|improve this question
    
var x = 0 -- you're redeclaring x as zero each click. –  ahren Nov 27 '12 at 1:24
    
I don't think x is incremented in the second case either... –  Jan Dvorak Nov 27 '12 at 1:24
    
My bad, however my issue still exists if I define x = 0 in the global space. –  Le Marcin Nov 27 '12 at 1:26
    
no function smooch, throwing error, not executing x++ –  OJay Nov 27 '12 at 1:27
3  
Uncaught TypeError: functionlist has no method 'smooch' –  Musa Nov 27 '12 at 1:27
show 1 more comment

1 Answer

up vote 5 down vote accepted

Well, if you check your script console (F12 is most browsers), you'll see that functionlist[array[x]]() throws an error something like:

Object has no method "smooch"

This is because array[x] is equal to "smooch", and functionlist["smooch"] is undefined, so it errors out before it makes it to your x++.

Other things going on in this code:

  • x is declared inside of your function, therefore it will always be 0 at the time it is used.
  • even if it were declared outside of your function, as you increment it, it will run out of items to look at in your array. You'll need to use a modulo operator or two here.
  • You're not referencing an .js files that have a definition for $.fn.transition, so your transition calls will also error out.
  • flip and flop both have the same rotateY value, so once it "flips" it won't "flop"

Here is something that might do what you're looking to do: http://jsfiddle.net/g5mJd/3/

And the updated code:

var array = ["smooch", "jab", "flip"];
var move = "flip";
var x = 0;
var functionlist = {
    flip: function() {
        $("#block").transition({
            perspective: '0px',
            rotateY: '180deg'
        }, 1000);
    },
    flop: function() {
        $("#block").transition({
            perspective: '0px',
            rotateY: '0deg'
        }, 100);
    }
};


$("#go").click(function() {
    var functionName = (x % 2 == 0) ? 'flip' : 'flop';
    var fn = functionlist[functionName];
    if($.isFunction(fn)) {
        fn();
    }
    var say = array[x % array.length];
    $('p').append(say + ' ');
    x++;
})​;

EDIT: Updated with $.isFunction() check.

share|improve this answer
1  
I'm surprised to see F12 works in Chrome as well. I thought it was an IE9 specialty. –  Jan Dvorak Nov 27 '12 at 1:30
    
@jan - f12 works in Firefox and Opera as well. –  gilly3 Nov 27 '12 at 1:35
1  
This is great! Thanks allot. Any hints or pointers to how I would go about making the code realize whether the content of the array is also the name of a function? (And in that case executing it)? –  Le Marcin Nov 27 '12 at 1:36
    
@LeMarcin typeof –  Jan Dvorak Nov 27 '12 at 1:37
1  
This is excellent! With $.isFunction I get exactly the results I was looking for. Although the flipping and flopping/the array running out of options weren't part of my intended use, I'm very curious how you got them to loop. Particularly what does [x % array.length] do? I figured out that (x % 2 == 0) ? 'flip' : 'flop'; keeps going between one and the other, but again, how does it do this? –  Le Marcin Nov 27 '12 at 4:23
show 2 more comments

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.