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Looking at an online source code I came across this at the top of several source files.

var FOO = FOO || {};
FOO.Bar = new function() { 
    // bunch of code here
}

But I have no idea what || {} does.

I know {} is equal to new Object() and I think the || is for something like "if it already exists use its value else use the new object.

Why would I see this at the top of a source file?

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Note: The question was edited to reflect that this is a code pattern commonly seen at the top of Javascript source files. –  Robert Harvey Jun 22 '11 at 16:42
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6 Answers

up vote 92 down vote accepted

Your guess as to the intent of || {} is pretty close.

This particular pattern when seen at the top of files is used to create a namespace, i.e. a named object under which functions and variables can be created without unduly polluting the global object.

The reason why it's used is so that if you have two (or more) files:

var MY_NAMESPACE = MY_NAMESPACE || {};
MY_NAMESPACE.func1 = {
}

and

var MY_NAMESPACE = MY_NAMESPACE || {};
MY_NAMESPACE.func2 = {
}

both of which share the same namespace it then doesn't matter in which order the two files are loaded, you still get func1 and func2 correctly defined within the MY_NAMESPACE object correctly.

The first file loaded will create the initial MY_NAMESPACE object, and any subsequently loaded file will augment the object.

Usefully, this also allows asynchronous loading of scripts that share the same namespace which can improve page loading times. If the <script> tags have the defer attribute set you can't know in which order they'll be interpreted, so as described above this fixes that problem too.

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This is exactly the case, there are a couple of js files with the exact same declaration at the beginning, thanks a lot! –  Ricardo Sanchez Jun 22 '11 at 12:19
24  
+1 for reading between the lines and explaining the reasons for doing it. It's always good when someone gives the answer that the user actually wanted rather than just the one he asked for. :) –  Spudley Jun 22 '11 at 12:32
1  
i like to say it's the #ifndef/#define for javascript :) –  Darren Kopp Jun 22 '11 at 17:15
    
|| is also really useful when you want to provide optional arguments and initialize them to defaults if not provided: function foo(arg1, optarg1, optarg2) { optarg1 = optarg1 || 'default value 1'; optarg2 = optart2 || 'defalt value 2';} –  crazy2be Jun 22 '11 at 19:24
1  
@crazy2be that doesn't work if the default is truthy, but falsey values are also legal, since the || operator can't tell undefined from falsey. –  Alnitak Jun 26 '11 at 14:02
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var AEROTWIST = AEROTWIST || {};

Basically this line is saying set the AEROTWIST variable to the value of the AEROTWIST variable, or set it to an empty object.

The double pipe || is an OR statement, and the second part of the OR is only executed if the first part returns false.

Therefore, if AEROTWIST already has a value, it will be kept as that value, but if it hasn't been set before, then it will be set as an empty object.

it's basically the same as saying this:

if(!AEROTWIST) {var AEROTWIST={};}

Hope that helps.

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1  
actually the scope would be fine in your last example because JS doesn't have block scope –  Alnitak Jun 22 '11 at 12:17
    
@Alnitak - meh, you're right; I've been working with closures too much lately and I've forgotten the basics. I'll edit the answer. –  Spudley Jun 22 '11 at 12:19
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If there is no value in AEROTWIST or it is null or undefined the value assigned to the new AEROTWIST will be {} (a blank object)

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Another common use for || is to set a default value for an undefined function parameter also:

function display(a) {
  a = a || 'default'; // here we set the default value of a to be 'default'
  console.log(a);
}

// we call display without providing a parameter
display(); // this will log 'default'
display('test'); // this will log 'test' to the console

The equivalent in other programming usually is:

function display(a = 'default') {
  // ...
}
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You don't need var in front of a, a enters the function's execution context as a formal parameter, hence it is already declared. –  Fabrício Matté Apr 5 '13 at 22:30
    
true, updated the answer –  alessioalex Apr 10 '13 at 19:01
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The || operator takes two values:

a || b

If a is truthy, it will return a. Otherwise, it will return b.

The falsy values are null, undefined, 0, "", NaN and false. The truthy values are everything else.

So if a has not been set (is it undefined) it will return b.

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I'm not sure truthy and falsey should be perpetuated as actual words. Amusing, but not exactly standard. :-) –  Orbling Jun 22 '11 at 12:25
4  
@Orbling they're quite commonly used to talk about such values in JS. –  Alnitak Jun 22 '11 at 13:18
    
+1 for describe the operator correctly, since it isn't a logical operator. Sometimes it's called "default operator". –  Tim Büthe Jun 22 '11 at 13:28
    
@Tim The only difference between || in JS (and Perl) and the version in C, C++ and Java is that JS doesn't cast the result to a boolean. It's still a logical operator. –  Alnitak Jun 22 '11 at 13:36
    
@Alnitak: Possibly due to the non-professional background of JS developers in the past. –  Orbling Jun 22 '11 at 14:21
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Notice that in some version of IE this code won't work as expected. Because the var, the variable is redefined and assigned so – if I recall correctly the issue – you'll end up to have always a new object. That should fix the issue:

var AEROTWIST;
AEROTWIST = AEROTWIST || {};
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