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http://pastebin.com/YysAqpQ5

I have this script and It's getting an aC variable undefined when it calls the aC.checkStreamUpdates function on line 447. In reference to the aC.newestUpdate variable I believe. I've added an alert just for testing purposes. Any Ideas? It worked fine before I wrapped this into the main function.

You can see why I wrapped all my code into the main function in lines 655 to 664.

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Please reduce your problem to just the relevant bits, and post that code here. –  Michael Petrotta Aug 7 '11 at 2:54
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Also, consider indenting the code. I opened up the link and promptly decided it wasn't worth my time to inspect -- proper indents are worth a thousand... –  user166390 Aug 7 '11 at 3:13
    
if you read the second line you would find a link to a proper indentation version... –  Andrew Anthony Gerst Aug 7 '11 at 3:14
    
"Also, consider indenting the code. I opened up the link and promptly decided it wasn't worth my time to inspect -- proper indents are worth a thousand..." -- if you want people to look, paste the correctly indented code. –  user166390 Aug 7 '11 at 3:15
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Yes. Like the ways of not being able to tell when functions or object literals end. –  user166390 Aug 7 '11 at 3:16
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1 Answer 1

You've only defined aC as a local variable inside of function main(). So if course it will not be visible in any other context.

If you're the one that added the main() wrapper it should be obvious why that caused things to break. Without that wrapper aC would be declared in the global scope, and thus visible from any context.

If you want to keep your main() function and have the code work, remove the var keyword from the var aC = ... line.

You've also seem to have code that tries to make use of aC before main() is actually called. Note that this will not work, because aC will not be defined in any scope until after main() has been called. So lines like this one:

$(document.documentElement).keydown(aC.onKeyDown);

...are going to error out. You need to move the call to main() so that it executes before any such code. Or move any such code so that it is after the call to main(), same difference.

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if i declare aC as a global variable it still fails... hmmm –  Andrew Anthony Gerst Aug 7 '11 at 3:04
    
check out this jsFiddle. jsfiddle.net/gerst20051/cpdFV –  Andrew Anthony Gerst Aug 7 '11 at 3:05
    
Well you also have a bunch of code that references aC before you actually call main(). You need to call main() first, prior to executing any code that makes a reference to aC. –  aroth Aug 7 '11 at 3:05
    
i don't see how i'm referencing aC before calling main? –  Andrew Anthony Gerst Aug 7 '11 at 3:07
    
Doesn't the definition of main() end on line 457 (in pastebin.com/YysAqpQ5)? Maybe it doesn't, it's hard to tell because the indentation is off. If it does, then line 459 will fail. –  aroth Aug 7 '11 at 3:11
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