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In PHP, I've used this:

do_it( $var2 = 'something_cool' );

function do_it( $var1, $var2 ) {
// does something
}

In JavaScript, I'm not quite sure the notation.

do_it( var2 = 'something_cool' ); // This isn't right, I don't think.

function do_it( var1, var2 ) {
// does something
}

I want to define var2 but leave var1 empty. What should my do_it look like for the line in question?

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1  
It's "wrong" in php either: This will assign 'something_cool' to $var1 within the function and not (what you probably expect) to $var2. I don't know, where you get this from, but there are no named parameters in PHP.... – KingCrunch Jul 21 '12 at 23:38
    
I swear I've done that in PHP... ok I was probably working with WordPress where it sets default values for parameters, and I was only changing one of them. Hence why I thought I could do that same in JavaScript. D'oh! – Adam Capriola Jul 21 '12 at 23:40
    
But (as mentioned) you can only set parameters from left to right .... There are no named parameters in PHP! – KingCrunch Jul 21 '12 at 23:42
up vote 6 down vote accepted

Neither of the two are correct. In PHP var1 will get that value in the function. In JS, if you don't want to assign something to the first parameter, make it null.

do_it(null, 'something_cool');

And then inside the function, check if it's null and perhaps give it a default value if it is. Or just reorder them so you don't have to. In JS you can pass any number of parameters into a function.

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The PHP version will print a missing second argument error. For optional variables in Javascript:

function A(var1, var2)
{
     if (!var2)
          var2 = "default";
}

A(1);
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2  
No it won't. It'll only trigger a PHP warning unless you have a custom error handler set to throw an ErrorException. – Lusitanian Jul 21 '12 at 23:41
    
Yep my bad. My overall saying is that his PHP is wrong, and it will print some error. – Novak Jul 21 '12 at 23:53
    
Certainly no harm done, you had the overall point correct. – Lusitanian Jul 22 '12 at 0:35

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