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I have the following javascript code:

var oLink = {
        title:   $link.attr('title') || '',
        row:     $link.attr('data-row') || '',
        $modal:  ''
    }

I now call a function like this:

oLink.$modal = accessModalOpen(oLink, content);

Do I need to return oLink.$modal or could I just set it inside accessModalOpen? In other words is the parameter oLink passed as a reference in javascript?

Update:

Added $modal to the oLink declaration

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You could simply find that yourself, by trying the two different cases. –  saji89 Sep 20 '12 at 6:06
    
As much as "if it works" I'm hoping to get some advice on is this a good thing to do. Thanks –  Samantha J Sep 20 '12 at 6:09

5 Answers 5

up vote 2 down vote accepted

"In other words is the parameter oLink passed as a reference in javascript?"

Yes. Within your function, you will have a reference to the same object, not a copy of the object, so yes you can update, add and delete object properties within your function.

Note though that it's not "pass by reference" in the sense that some languages have it. The variable outside the function and the parameter used inside the function will both refer to the same object, which is why you can change its properties, but if you assign the function parameter to some other object that doesn't affect the variable outside the function which will continue to refer to the original object.

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With your current setup, you should return it. oLink is passed as a reference, so you can set it inside of the function too, but then you'd have this instead:

accessModalOpen(oLink, content);

Demo to help you understand

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Can you explain why you think I should return it. I updated my question slightly and included $modal to the oLink declaration. Thanks –  Samantha J Sep 20 '12 at 6:06
    
Well, in your current setup, if you didn't return it, in the end, oLink.$modal would be undefined. It'd be set inside the function, then the function would end, it'd return nothing, which is undefined, and this return value would be set to the variable, making it undefined. –  Some Guy Sep 20 '12 at 6:10

Both will achieve the same result in this specific case, but it depends on the actual semantics of the oLink.$modal property. If that property is closely tied to the logic of accessModalOpen, then you should set it inside accessModalOpen; if there would be situations where accessModalOpen shouldn't set oLink.$modal, but you would still need that value in some other way, you should return it.

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To help (or hinder... we'll see), JS passes non-scalar objects by reference, but passes scalar objects by value.

var x = 10;
function increment (num) { num += 1; }

increment(x);
console.log(x); // 10;

Meanwhile:

var bob = {
    name : "Bob",
    age : 32,
    job : "Shoe Salesman",
    salary : 2000000
};

function fire (employee) {
    delete employee.job;
    employee.unemployed = true;
    employee.salary = 0;
}

fire(bob); // { name : "Bob", age : 32, unemployed : true, salary : 0 }

So if you're passing an object or a function into a function, you will be able to add/modify properties.
If you pass an array, you will be able to push items into it, or pop items out of it.

If you're passing a string or a number or a boolean, you need to use the return value (but if you pass an object, you can modify one of its properties to be a scalar value).

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You can do either:

DEMO

var $link = {
    attr:function(str) { return str; }
}

function accessModalOpen(obj,cont) {
    return "Modal: accessed "+obj.title+" with "+cont.text;
}    
function accessModalOpen1(obj,cont) {
    obj.$modal1= "Modal1: accessed "+obj.title+" with "+cont.text;
}    
var content = {
    text:"This is content"
}    
var oLink = {
  title:   $link.attr('object title') || '',
  row:     $link.attr('data-row') || ''
}

oLink.$modal = accessModalOpen(oLink, content); // return content and set
alert(oLink.$modal); 

accessModalOpen1(oLink, content); // just set
alert(oLink.$modal1); 
​
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You see the return in accessModalOpen? That's what he's talking about. He's asking if he can simply set the value in there instead of having a value returned. –  Some Guy Sep 20 '12 at 6:12
    
Ahh - NOW I understand. Updated to reflect either –  mplungjan Sep 20 '12 at 9:10

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