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This question already has an answer here:

I'm looking for some good comprehensive reading material on when Javascript passes something by value and when by reference and when modifying a passed item affects the value outside a function and when not. I'm also interested in when assigning to another variable is by reference vs. by value and whether that follows any different rules than passing as a function parameter.

I've done a lot of searching and find lots of specific examples (many of them here on SO) from which I can start to piece together pieces of the real rules, but I haven't yet found a single, well written document that describes it all.

Also, are there ways in the language to control whether something is passed by reference or by value?

Here are some of the types of questions I want to understand. These are just examples - I'm actually looking to understand the rules the language goes by, not just the answers to specific examples. But, here are some examples:

function f(a,b,c) {
   a = 3;
   b.push("foo");
   c.first = false;
}

var x = 4;
var y = ["eeny", "miny", "mo"];
var z = {first: true};
f(x,y,z);

When are the contents of x, y and z changed outside the scope of f for all the different types?

function f() {
    var a = ["1", "2", "3"];
    var b = a[1];
    a[1] = "4";
    // what is the value of b now for all possible data types that the array in "a" might hold?
}

function f() {
    var a = [{yellow: "blue"}, {red: "cyan"}, {green: "magenta"}];
    var b = a[1];
    a[1].red = "tan";
    // what is the value of b now and why?
    b.red = "black";
    // did the value of a[1].red change when I assigned to b.red?
}

If I want to make a fully independent copy of an object (no references whatsoever), what's the best practice way to do that?

share|improve this question

marked as duplicate by Shog9 Nov 12 '14 at 1:30

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
This is a worthwhile read: Wiki: Evaluation Strategy. I prefer Call By Object Sharing to avoid such confusion and leave Call By Reference to actually mean something else, where it applies. To make a "clone" consider jQuery.extend (shallow clone only!) or similar provided by your choice of framework. (I think ECMA ed. 5 introduces Object.clone ...?). A "deep clone" can be achieved with serializing to JSON and back, where such an operation is preserving (it might not always be). I am sure there are also other functions designed for this :) – user166390 Jul 7 '11 at 4:21
    
I believe jQuery.extend now (1.8.x +) supports deep cloning (using an optional boolean parameter) – Flak DiNenno Jun 1 '14 at 18:53
    
In the years since this question, I've found it is easiest to explain this issue to Javascript newbies (particularly people who know C/C++) by saying just this: "In Javascript, objects are passed by pointer and everything else is passed by value." – jfriend00 Dec 7 '15 at 21:25
up vote 190 down vote accepted

My understanding is that this is actually very simple:

  • Javascript is always pass by value, but when a variable refers to an object (including arrays), the "value" is a reference to the object.
  • Changing the value of a variable never changes the underlying primitive or object, it just points the variable to a new primitive or object.
  • However, changing a property of an object referenced by a variable does change the underlying object.

So, to work through some of your examples:

function f(a,b,c) {
    // Argument a is re-assigned to a new value.
    // The object or primitive referenced by the original a is unchanged.
    a = 3;
    // Calling b.push changes its properties - it adds
    // a new property b[b.length] with the value "foo".
    // So the object referenced by b has been changed.
    b.push("foo");
    // The "first" property of argument c has been changed.
    // So the object referenced by c has been changed (unless c is a primitive)
    c.first = false;
}

var x = 4;
var y = ["eeny", "miny", "mo"];
var z = {first: true};
f(x,y,z);
console.log(x, y, z.first); // 4, ["eeny", "miny", "mo", "foo"], false

Example 2:

var a = ["1", "2", {foo:"bar"}];
var b = a[1]; // b is now "2";
var c = a[2]; // c now references {foo:"bar"}
a[1] = "4";   // a is now ["1", "4", {foo:"bar"}]; b still has the value
              // it had at the time of assignment
a[2] = "5";   // a is now ["1", "4", "5"]; c still has the value
              // it had at the time of assignment, i.e. a reference to
              // the object {foo:"bar"}
console.log(b, c.foo); // "2" "bar"
share|improve this answer
17  
While technically true, I prefer to say JavaScript is Pass By Object Sharing. It avoids such confusion and moves to a "high level" view. – user166390 Jul 7 '11 at 4:19
    
@pst - That makes sense, but note the issues raised in the referenced Wikipedia page - most people don't use the term, and the (large) Java community calls this "pass-by-value". Still, I agree that it's a bit confusing. – nrabinowitz Jul 7 '11 at 4:30
1  
What "confusion" are you referring to? To me "pass-by-value" is perfectly clear. – MEMark Jun 24 '14 at 19:56
    
The example in this question that this one duplicates, shows an even more interesting case: c = {first: '5'}. After executing f(x, y, z), z will remain {first: true}. – Dan Dascalescu Oct 26 '14 at 1:54
    
Changing the value of a variable never changes the underlying primitive or object. However, changing a property of an object referenced by a variable does change the underlying object. These two sentences put together remove so many doubts. Thank you! – Amit Tomar Jan 18 at 5:50

Yes, Javascript always passes by value, but in an array or object, the value is a reference to it, so you can 'change' the contents.

But, I think you already read it on SO; here you have the documentation you want:

http://snook.ca/archives/javascript/javascript_pass

Hope this helps. Cheers.

share|improve this answer
    
While technically true, I prefer to say JavaScript is Pass By Object Sharing. It avoids such confusion and moves to a "high level" view. – user166390 Jul 7 '11 at 4:20
    
I made a fiddle to play around with this a bit: jsfiddle.net/tkane2000/7weKS/1 – tkane2000 May 22 '14 at 13:54

Javascript always passes by value. However, if you pass an object to a function, the "value" is really a reference to that object, so the function can modify that object's properties but not cause the variable outside the function to point to some other object.

An example:

function changeParam(x, y, z) {
  x = 3;
  y = "new string";
  z["key2"] = "new";
  z["key3"] = "newer";

  z = {"new" : "object"};
}

var a = 1,
    b = "something",
    c = {"key1" : "whatever", "key2" : "original value"};

changeParam(a, b, c);

// at this point a is still 1
// b is still "something"
// c still points to the same object but its properties have been updated
// so it is now {"key1" : "whatever", "key2" : "new", "key3" : "newer"}
// c definitely doesn't point to the new object created as the last line
// of the function with z = ...
share|improve this answer
  1. primitive type variable like string,number are always pass as pass by value.
  2. Array and Object is passed as pass by reference or pass by value based on these two condition.

    • if you are changing value of that Object or array with new Object or Array then it is pass by Value.

      object1 = {item: "car"}; array1=[1,2,3];

    here you are assigning new object or array to old one.you are not changing the value of property of old object.so it is pass by value.

    • if you are changing a property value of an object or array then it is pass by Reference.

      object1.item= "car"; array1[0]=9;

    here you are changing a property value of old object.you are not assigning new object or array to old one.so it is pass by reference.

Code

    function passVar(object1, object2, number1) {

        object1.key1= "laptop";
        object2 = {
            key2: "computer"
        };
        number1 = number1 + 1;
    }

    var object1 = {
        key1: "car"
    };
    var object2 = {
        key2: "bike"
    };
    var number1 = 10;

    passVar(object1, object2, number1);
    console.log(object1.key1);
    console.log(object2.key2);
    console.log(number1);

Output: -
    laptop
    bike
    10
share|improve this answer
    
Nope. Everything is pass by value, always. – newacct Oct 28 '14 at 19:05
7  
There's a time honored terminology debate about calling what Javascript does "pass by reference". I prefer to side step that debate and call what JS does for objects and arrays "pass by pointer". Arrays and Objects are always pass by pointer. If you modify what was passed in (accessing the pointer), the original is modified. If you assign a different array or object to the pointer variable, then the original is not modified because your variable now "points" to a different array or object. Much of this is a "terminology debate", because there is no debate about what actually happens. – jfriend00 Oct 28 '14 at 20:09
4  
@newacct - And for those that like to claim "everything is pass by value", that doesn't help newbies understand the issue in any way no matter how technically correct you might think you are at some level. Any good explanation has to explain the difference between how objects and primitives are passed such that a newbie understands the difference in practical use since the goal in a question and answer like this is a clear explanation that can be put to use for those who don't understand the finer implementation details or technical meaning of terms. – jfriend00 Oct 28 '14 at 20:16
2  
@jfriend00: The thing is, there is nothing special about "passing". It works the same way as assigning or any other operation. Once you understand that all values are either primitives or pointers to objects, and not talk about "objects" as values themselves, then there is no confusion. Also, the semantics of passing and assigning in JavaScript are identical to those in Java. And "everything is pass by value" is pretty much how Java is generally described on StackOverflow, combined with explanation how all non-primitives are pointers to objects. – newacct Oct 30 '14 at 8:13
1  
@newacct - the point here is to explain to people who aren't sophisticated developers and saying everything is "pass by value" without a lot more explanation just simply isn't enough. It doesn't explain the difference in how a primitive and an array are passed or assigned. You can argue it's technically correct, but it's an insufficient explanation for non-sophisticated developers. Your very comment that "once you understand ..." shows that it isn't sufficient until you understand other things - thus you can't just say "everything is pass by value" to a newbie and be done. – jfriend00 Oct 30 '14 at 8:31

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