Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Does JavaScript pass by references or pass by values? Here is an example from JavaScipt: The Good Parts. I am very confused about my parameter for the rectangle function. It is actually undefined, and redefined inside the function. There are no original reference. If I remove it from the function parameter, the inside area function is not able to access it.

Is it a closure? But no function is returned.

var shape = function (config) {
    var that = {};
    that.name = config.name || "";
    that.area = function () {
        return 0;
    };
    return that;
}
var rectangle = function (config, my) {
    my = my || {};
    my.l = config.length || 1;
    my.w = config.width || 1;
    var that = shape(config);
    that.area = function () {
        return my.l * my.w;
    }
    return that;
};
myShape = shape({
    name: "Unhnown"
});
myRec = rectangle({
    name: "Rectangle",
    length: 4,
    width: 6
});
console.log(myShape.name + " area is " + myShape.area() + " " + myRec.name + " area is " + myRec.area());
share|improve this question

7 Answers 7

up vote 61 down vote accepted

Primitives are passed by value, Objects are passed by "copy of a reference".

Specifically, when you pass an object (or array) you are (invisibly) passing a reference to that object, and it is possible to modify the contents of that object, but if you attempt to overwrite the reference it will not affect the copy of the reference held by the caller - i.e. the reference itself is passed by value:

function replace(ref) {
    ref = {};           // this code does _not_ affect the object passed
}

function update(ref) {
    ref.key = 'newvalue';  // this code _does_ affect the _contents_ of the object
}

var a = { key: 'value' };
replace(a);  // a still has its original value - it's unmodfied
update(a);   // the _contents_ of 'a' are changed

Compare with C++ where changing a reference type can entirely replace the object passed by the caller:

void replace(mytype& ref) {
    ref = *new mytype();  // ignoring the memory leak for the purposes of this example
}

mytype a;
replace(a);   // a is now a _different_ object
share|improve this answer
16  
Yes "copy of a reference" is a good way to put it; this simple concept confuses so many people. –  Pointy Oct 27 '12 at 22:04
    
I figured this will work too. So my can be defined inside the function. var rectangle = function (config) { var l = config.length || 1; var w = config.width || 1; var that = shape(config); that.area = function () { return l * w; } return that; }; –  J Any Oct 27 '12 at 22:30
1  
@Alnitak This is one of simplest explanations of concept I've seen so far, not just for js, nice 1. –  Unavailable Jan 31 at 20:32
1  
@IoanAlexandruCucu personally I think "copy of reference" is more intuitive ;-) –  Alnitak Feb 3 at 11:30
1  
Great explanation! FWIW, this is also the case with Python. –  Jotaf Apr 9 at 14:28

Think of it like this:

Whenever you create an object in ECMAscript, this object is formed in a mystique ECMAscript universal place where no man will ever be able to get. All you get back is a reference to that object in this mystique place.

var obj = { };

Even obj is only a reference to the object (which is located in that special wonderful place) and hence, you can only pass this reference around. Effectively, any piece of code which accesses obj will modify the object which is far, far away.

share|improve this answer
8  
And the reference is itself passed by value, like everything else in JavaScript. –  Pointy Oct 27 '12 at 22:04
6  
I almost can see that place in my fantasy... –  Andre Meinhold Oct 27 '12 at 22:09

As with C, ultimately, everything is passed by value. Unlike C, you can't actually back up and pass the location of a variable, because it doesn't have pointers just references.

And the refernces it has are all to objects, not variables. There are several ways of achieving the same result, but they have to be done by hand, not just adding a keyword at either the call or declaration site.

share|improve this answer
    
This is actually the most correct of the answers here. If you ever dig into V8 or the competing engines, this is how function calls are actually implemented. –  joekarl Jul 18 at 21:58

In practical terms, Alnitak is correct and makes it easy to understand, but ultimately in JavaScript, everything is passed by value.

What is the "value" of an object? It is the object reference.

When you pass in an object, you get a copy of this value (hence the 'copy of a reference' that Alnitak described). If you change this value, you do not change the original object, you are changing your copy of that reference.

share|improve this answer
    
this does not clarify but confuse. –  Guillermo Siliceo Trueba Jan 13 at 4:23

JavaScript is pass by value. For primitives, primitive's value is passed. For Objects, Object's reference "value" is passed.

Example with Object:

var f1 = function(inputObject){
    inputObject.a=2;
}
var f2 = function(){
    var inputObject={"a":1};
    f1(inputObject); 
    console.log(inputObject.a);
}

calling f2 results in printing out "a" value as 2 instead of 1, as the reference is passed and the "a" value in reference is updated.

Example with primitive:

var f1 = function(a){
    a=2;
}
var f2 = function(){
    var a =1;
    f1(a); 
    console.log(a);
}

calling f2 results in printing out "a" value as 1.

share|improve this answer

"Global" javascript variables are members of the window object. You could access the reference as a member of the window object.

var v = "initialized";
function byref(ref) {
 window[ref] = "changed by ref";
}
byref((function(){for(r in window){if(window[r]===v){return(r);}}})());
// could also be called like... byref('v');
console.log(v); // outputs changed by ref

Note, the above example will not work for variables declared within a function.

share|improve this answer

Try this solution: Pass Variables by Reference in Javascript

share|improve this answer
    
Do you seriously have to copy and paste your answer exactly to another question? –  Derek 朕會功夫 Mar 31 at 6:12
    
Sorry! Like now? –  Eduardo Cuomo Mar 31 at 13:30

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.