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I have the following:

setup : function(first, middle, last) {

    // Clean input.
    $.each([first, middle, last], function(index, value) {

        ??? = value.replace(/[\W\s]+/g, '').toLowerCase();
    });

Is there a way I could get that to work? I've tried to figure out what to substitute instead of ??? (I've tried this, index, this[index], but can't seem to wrap my head around pointing to the original variables.

Thanks for any help.

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2 Answers 2

up vote 2 down vote accepted

Use the Arguments object.

setup : function(first, middle, last) {
    var args = arguments;
    $.each(arguments, function(index, value) {
        args[index] = value.replace(/[\W\s]+/g, '').toLowerCase();
    });

Example: http://jsfiddle.net/EfHQ2/

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+1 for referencing your answer in mine ;) –  Box9 Feb 15 '11 at 6:02
    
@Box9: Yeah, neat trick huh? ;o) –  user113716 Feb 15 '11 at 6:04
    
Would it be possible (or a horrible practice) to do arguments[index] instead the each and overwrite what was given. The purist in me doesn't want to create another variable. Also is using map like: arguments = $.map(arguments... possible if the above isn't a bad practice? Seems like the neatest solution. –  Ian Storm Taylor Feb 15 '11 at 6:41
    
Actually gonna ask it in a new question to get more feedback on overwriting arguments in general. Thanks both of you! –  Ian Storm Taylor Feb 15 '11 at 6:59
    
Also just realized that $.map probably wouldn't work to overwrite since arguments isn't really an array. –  Ian Storm Taylor Feb 15 '11 at 7:01

To modify arrays, use $.map() instead, and just return the new value:

var clean = $.map([first, middle, last], function(value, index) {
    return value.replace(/[\W\s]+/g, '').toLowerCase();
});

Better, use the special arguments object (as in Patrick's answer) in place of building a temporary array:

var clean = $.map(arguments, function(value, index) {
    return value.replace(/[\W\s]+/g, '').toLowerCase();
});
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Since you're using the more generic $.map(), you need to flip around the parameters like (value, index). They're opposite of the .map() method. –  user113716 Feb 15 '11 at 6:08
    
@patrick Yes, thanks - it's tripped me up a few times. –  Box9 Feb 15 '11 at 6:16

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