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I have a simple function that calls other functions:

function update() {


They are similar to each other in every way except updatePlayer will not run if I put brackets on the end of it. This doesn't break any code but I'm still curious why it does that?

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Without knowing anything about updatePlayer, it's impossible to say much. But a function won't run unless it's called, and calling a function means (). –  Dave Newton Feb 7 '12 at 16:31
@BogdanProtsenko: What is updatePlayer? What do you meand by "updatePlayer will not run" and how you check if it has been run? –  Tadeck Feb 7 '12 at 16:32
What is your specific error message? My guess is that updatePlayer is not a function by the time update executes. Just before updatePlayer, write console.log(updatePlayer) to see what the value is. –  benekastah Feb 7 '12 at 16:32

4 Answers 4

up vote 3 down vote accepted

I'm guessing there's an Exception in the updatePlayer method and since you're not calling it in the code you pasted above, you're not getting the Exception.

I would open up the Developer Tools for whatever browser you're using and see if there are any JavaScript Exceptions being thrown.

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You are confused. updatePlayer; doesn't invoke the updatePlayer function. updatePlayer(); does. Something else is going on in your code.

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Without knowing more it's impossible to pinpoint exactly, but as a best guess - in the scope of the update function, the updatePlayer variable is not a function.

Try logging or debugging your javascript to find out what is going on.

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A function will run only if you put () after it's name. If you don't put brackets you'll get the function's content. For example if you have:

function updatePlayer(){ alert('This is a player');}

And call it without brackets:


the alerted output will be

function updatePlayer(){ alert('This is a player');}

This is used if you want to use callback functions.

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