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In the following function:

foo = function(a){
    if (!a) a = "Some value";
    // something done with a
    return a;
}

When "a" is not declared I want to assign a default value for use in the rest of the function, although "a" is a parameter name and not declared as "var a", is it a private variable of this function? It does not seem to appear as a global var after execution of the function, is this a standard (i.e. consistent) possible use?

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1  
Any argument provided in the function signature is scoped to the function only. The function you have written as an example is correct. –  Freyday Aug 13 '12 at 20:57
1  
A common short hand for this is, return a || "Some value" instead of if(!a) a = "some value"; return a; –  sissonb Aug 13 '12 at 20:58
2  
better use if(typeof a == "undefined") –  UnLoCo Aug 13 '12 at 20:58

3 Answers 3

up vote 1 down vote accepted

It's a private variable within the function scope. it's 'invisible' in the global scope.
as for your code you better write like this

foo = function(a){
    if (typeof a =="undefined") a = "Some value";
    // something done with a
    return a;
}

because !a can be true for 0, an empty string '' or just null.

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1  
Good point. a = a || "some value" has the same failings as if(!a). –  sissonb Aug 13 '12 at 21:06
1  
a will always be either an object or undefined, but yes point taken –  daaanipm Aug 13 '12 at 23:37

Yes, in this context a has a scope inside the function. You can even use it to override global variables for a local scope. So for example, you could do function ($){....}(JQuery); so you know that $ will always be a variable for the JQuery framework.

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Parameters always have private function scope.

var a = 'Hi';
foo = function(a) {
    if (!a) a = "Some value";
        // something done with a
        return a;
    };
console.log(a); // Logs 'Hi'
console.log('Bye'); // Logs 'Bye'
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