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I have this function that populates the currsong variable with data. The problem is that the variable currsong is only available inside the function and I need to access it globally.

// get a single audio url
echonest.artist(artist).audio( function(audioCollection) {
    var currsong = audioCollection.data.audio[0].url;
    return currsong;
    });

Thank you!

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2  
There is no question here... there is simply a vague statement, and a block of code. This is the perfect example of a poorly structure question. –  Zoidberg Feb 28 '11 at 23:49
    
Can you please share the code you are using to call this function. –  Mottie Mar 1 '11 at 0:04
    
Here you go fudgey jsfiddle.net/2sCSC –  Ronal Mar 1 '11 at 0:08
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3 Answers

up vote 1 down vote accepted

To declare a global variable, you can always remove var:

currsong = audioCollection.data.audio[0].url;

I'm not sure if a global variable is a good solution for whatever you're trying to do, though. People suggest to avoid them for reason.

edit
An example.
Note, the variable will be undefined before function is executed first time. In your code, you only pass it into audio, you don't actually invoke it.

edit2
As Tgr notes, you can also declare global variable explicitly: window.currsong = .... There's no functional difference, but it improves code quality.

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i tried that and it actually comes back undefined –  Ronal Feb 28 '11 at 23:50
    
You could do that, but I'm not convinced that using a global variable is the best way of solving this problem. –  quanticle Feb 28 '11 at 23:58
    
@quanticle We weren't asked "how to solve this problem", we've been asked "how to declare this variable global". I would also like to suggest better solution, yet OP didn't describe his problem for that. –  Nikita Rybak Mar 1 '11 at 0:00
    
I concede the point regarding what we were asked. Regardless, I maintain that if adding a global variable is your first resort, you're doing something wrong. –  quanticle Mar 1 '11 at 0:12
    
@quanticle Then say that to OP, maybe you'll convince him :) I myself already put a warning in the post. –  Nikita Rybak Mar 1 '11 at 0:17
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Scope is an interesting bird in javascript. So is closure.

Observation 1: you are returning a value from an inline function; that return value is meaningless.

Observation 2: by using the "var" keyword, you are specifying a local scope. Removing var will make the variable global. However, even if you do that it is possible that you will attempt to access that variable before the function gets triggered (i.e. it will be undefined).

Since you're just starting to wrap your head around the concept of closure and javascript scope, I'd recommend reading up on it and then rethinking your application design (since I would be willing to bet that you will learn something which prompts another approach).

In the mean time, try defining the variable outside of the inline function and giving it a temporary value. After that remove "var" from inside of the function.

// get a single audio url
var currsong = "temporary value";
echonest.artist(artist).audio( function(audioCollection) {
    currsong = audioCollection.data.audio[0].url;
    return currsong;
});
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thank you slifty, i tried that and it does come back undefined. i appreciate the help –  Ronal Mar 1 '11 at 0:02
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I've rewritten your code to make it a little more clear for myself and others. Please let me know if I've transliterated something incorrectly.

Basically, it looks like you're trying to get curSong as follows:

echonest.artist(artist).audio(
    function(audioCollection){
        var curSong = audioCollection.data.audio[0].url;
        return curSong;
    }
);

Right now, what you're doing is passing a function (the anonymous function defined by function(audioCollection)) to the audio function of whatever artist(artist) returns. As such, the curSong value is returned to audio(), and then only when audio() actually runs the function that its handed. I would look at audio() and try to see if there is a way to get curSong out of it. Otherwise, I'd do as slifty describes above and declare curSong in a larger scope, so that it can be accessed even outside of audio().

EDIT: For example, a sample audio function could be as follows:

function audio(inputFunction){
    var audioCollection = getAudioCollection();
    var song = inputFunction(audioCollection);
    return song;
}

The variable curSong is in an anonymous function being passed to audio(). As such, it doesn't exist until that anonymous function is executed, as in the above code. Now, when you run your code (from the first snippet), the anonymous inner function will return curSong to audio(), and audio() will return curSong to you.

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thank you for that quanticle. basically the curSong var is unavailable from outside the function even without the var in front. I have no idea how to access it from another function –  Ronal Mar 1 '11 at 0:11
    
audio() should have access to curSong, as the function is returning curSong. –  quanticle Mar 1 '11 at 1:09
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