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Assume -

function noname(a, b) {
//code
}

and I give -

noname(4,5,6,7);

What will happen then?

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2  
Note: The declared arguments have no effect on the way you call the function - you can even call it with no arguments at all. –  Joseph Silber Aug 31 '12 at 14:35
    
more information here stackoverflow.com/questions/2002817/… –  gray state is coming Aug 31 '12 at 14:39
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2 Answers 2

up vote 9 down vote accepted

The additional parameters will simply get ignored.

They will however be available as part of the arguments pseudo-array, e.g. as arguments[2], arguments[3].

If you give fewer variables than are required then the missing ones will be undefined.

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How does sort work then, when there usually are more items in the array than the functions? Is it an exception on arrays? –  Namanyayg Aug 31 '12 at 14:39
    
sort is a method of an array - the array arrives in the this variable and is manipulated directly. It's not passed as a parameter. –  Alnitak Aug 31 '12 at 14:44
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As Alnitak said, they become undefined since they haven nothing binding them, unless as stated: arguments[i] is used`.

A good practice is to first test how many original parameters the function had stated by using the .length method available on all functions.

noname.length === 2 // in your case

This makes it easier to then save any additional arguments (just in case we might want to use them)

jsFiddle Demo

function noname (a, b) {
    console.log('Original parameters in this function: ' + noname.length);

    var additionalParameters = [];

    if (arguments.length > noname.length) {
        for (i = 0; i < arguments.length - noname.length; i++) {
            // We need to start arguments off at index: 2 in our case
            // The first 0 & 1 parameters are a, b

            additionalParameters[i] = arguments[i + noname.length];
            // These of course will be saved starting at 0 index on additionalParameters
        }
    }

    console.log(additionalParameters);
}

noname(1, 2, 3, 4, 5);

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I wouldn't say that was specifically good practise, since many functions don't expose .length. In any case, I'd use var additional = [].prototype.slice.call(arguments, arguments.callee.length) instead of that verbose (and incredibly inefficient) loop. –  Alnitak Aug 31 '12 at 14:47
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