Does Javascript pass by references or pass by values? Here is an example from Javascript: 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());

10 Answers 10

up vote 501 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
  • 80
    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
  • 6
    Though not popular, the behaviour for object is acually named 'call by sharing': en.wikipedia.org/wiki/Call_by_sharing#Call_by_sharing – Ioan Alexandru Cucu Jan 31 '14 at 18:39
  • 1
    @Alnitak This is one of simplest explanations of concept I've seen so far, not just for js, nice 1. – formatc Jan 31 '14 at 20:32
  • 1
    @IoanAlexandruCucu personally I think "copy of reference" is more intuitive ;-) – Alnitak Feb 3 '14 at 11:30
  • 4
    Great explanation! FWIW, this is also the case with Python. – Jotaf Apr 9 '14 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.

  • 22
    And the reference is itself passed by value, like everything else in JavaScript. – Pointy Oct 27 '12 at 22:04
  • 39
    I almost can see that place in my fantasy... – Andre Meinhold Oct 27 '12 at 22:09

My 2 Cents.... It's irrelevant whether Javascript passes parameters by reference or value. What really matters is assignment vs mutation.

I wrote a longer, more detailed explanation here (Is JavaScript a pass-by-reference or pass-by-value language?)

When you pass anything (Whether that be an object or a primitive), all javascript does is assign a new variable while inside the function... just like using the equal sign (=)

How that parameter behaves inside the function is exactly the same as it would behave if you just assigned a new variable using the equal sign.. Take these simple examples.

var myString = 'Test string 1';

// Assignment - A link to the same place as myString
var sameString = myString;

// If I change sameString, it will not modify myString, 
// it just re-assigns it to a whole new string
sameString = 'New string';

console.log(myString); // logs 'Test string 1';
console.log(sameString); // logs 'New string';

If I were to pass myString as a parameter to a function, it behaves as if I simply assigned it to a new variable. Now, let's do the same thing, but with a function instead of a simple assignment

function myFunc(sameString) {

    // Re assignment.. again, it will not modify myString
    sameString = 'New string';
}

var myString = 'Test string 1';

// This behaves the same as if we said sameString = myString
myFunc(myString);

console.log(myString); // Again, logs 'Test string 1';

The only reason that you can modify objects when you pass them to a function is because you are not reassigning... Instead, objects can be changed or mutated.... Again, it works the same way.

var myObject = { name: 'Joe'; }

// Assignment - We simply link to the same object
var sameObject = myObject;

// This time, we can mutate it. So a change to myObject affects sameObject and visa versa
myObject.name = 'Jack';
console.log(sameObject.name); // Logs 'Jack'

sameObject.name = 'Jill';
console.log(myObject.name); // Logs 'Jill'

// If we re-assign it, the link is lost
sameObject = { name: 'Howard' };
console.log(myObject.name); // Logs 'Jill'

If I were to pass myObject as a parameter to a function, it behaves as if I simply assigned it to a new variable. Again, the same thing with the exact same behavior but with a function.

function myFunc(sameObject) {

    // We mutate the object, so the myObject gets the change too... just like before.
    sameObject.name = 'Jill';

    // But, if we re-assign it, the link is lost
    sameObject = { name: 'Howard' };
}

var myObject = { name: 'Joe'; }

// This behaves the same as if we said sameObject = myObject;
myFunc(myObject);
console.log(myObject.name); // Logs 'Jill'

Every time you pass a variable to a function, you are "Assigning" to whatever the name of the parameter is, just like if you used the equal (=) sign.

Always remember that the equals sign (=) means assignment. And passing a parameter to a function also means assignment. They are the same and the 2 variables are connected in exactly the same way.

The only time that modifying a variable affects a different variable is when the underlying object is mutated.

There is no point in making a distinction between objects and primitives, because it works the same exact way as if you didn't have a function and just used the equal sign to assign to a new variable.

  • 1
    It's "pass by copy" and "pass by reference" simple as that to convey all the releveant meaning. Do I get "a thing that is it's own thing" or the "thing" is all you care about. – GL_Stephen Mar 16 '17 at 22:39

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.

  • 3
    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 '14 at 21:58
  • Under the covers I bet objects are pointers. An object parameter being a newly created pointer that points to the same address as the pointer being passed in. – user3015682 May 11 '15 at 23:45

Function arguments are passed either by-value or by-sharing but never NEVER by reference in Javascript!

Call-by-Value

Primitive types are passed by-value:

var num = 123, str = "foo";

function f(num, str) {
  num += 1;
  str += "bar";
  console.log("inside of f:", num, str);
}

f(num, str);
console.log("outside of f:", num, str);

Reassignments inside a function scope are not visible in the surrounding scope.

This also applies to Strings, which are a composite data type and yet immutable:

var str = "foo";

function f(str) {
  str[0] = "b"; // doesn't work, because strings are immutable
  console.log("inside of f:", str);
}

f(str);
console.log("outside of f:", str);

Call-by-Sharing

Objects, that is to say all types that are not primitives are passed by-sharing. A variable that holds a reference to an object actually holds merely a copy of this reference. If Javascript would pursue a Call-by-reference evaluation strategy, the variable would hold the original reference. This is the crucial difference between by-sharing and by-reference.

What are the practical consequences of this distinction?

var o = {x: "foo"}, p = {y: 123};

function f(o, p) {
  o.x = "bar"; // mutation
  p = {x: 456}; // reassignment
  console.log("o inside of f:", o);
  console.log("p inside of f:", p);
}

f(o, p);

console.log("o outside of f:", o);
console.log("p outside of f:", p);

Mutating means to modify certain properties of an existing Object. The reference copy that a variable is bound to and that refers to this object remains the same. Mutations are thus visible in the caller's scope.

Reassigning means to replace the reference copy bound to a variable. Since it is only a copy, other variables holding a copy of the same reference remain unaffected. Reassignments are thus not visible in the caller's scope like they would be with a Call-by-reference evaluation strategy.

Further information on evaluation strategies in Ecmascript.

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.

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.

  • 1
    this does not clarify but confuse. – Guillermo Siliceo Trueba Jan 13 '14 at 4:23
  • 3
    Combined with the other answers, this clarified the concept for me. Thanks. – mwotton Aug 21 '14 at 0:29

"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.

In the interest of creating a simple example that uses const...

const myRef = { foo: 'bar' };
const myVal = true;

function passes(r, v) {
  r.foo = 'baz';
  v = false;
}

passes(myRef, myVal);

console.log(myRef, myVal); // Object {foo: "baz"} true

Without purisms, I think that the best way to emulate scalar argument by reference in Javascript is using object, like previous answer tells.

However, I do a little bit different:

I've made the object assigment inside function call, so one can see the reference parameters near the function call. It increases the source readability

In function declaration, I put the properties like a comment, for the very same reason: readability.

var r;

funcWithRefScalars(r = {amount:200, message:null} );
console.log(r.amount + " - " + r.message);


function funcWithRefScalars(o) {  // o(amount, message)
  o.amount  *= 1.2;
  o.message = "20% increase";
}

In above example, null indicates clearly an output reference parameter.

The exit:

240 - 20% Increase

In client-side, console.log should be replaced by alert.

★ ★ ★

Another method that can be even more readable:

var amount, message;

funcWithRefScalars(amount = [200], message = [null] );
console.log(amount[0] + " - " + message[0]);

function funcWithRefScalars(amount, message) {  // o(amount, message)
   amount[0]  *= 1.2;
   message[0] = "20% increase";
}

Here you don't even need to create new dummy names, like r above.

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