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.

I have the following code (I am using the jQquery libary):

var obj = {};
var objstring = '{"one":"one","two":"two","three":"three"}'

// first console output
console.log(objstring);

var jsonobj = $.parseJSON(objstring);

// second console output
console.log(jsonobj);

obj.key = jsonobj;
obj.key.test = "why does this affect jsonobj? (even in the second console output)";

// third console output
console.log(jsonobj);

My Question: When I do obj.key = jsonobj and I change values in the new obj.key. Why do values in jsonobj then also change? And how would I avoid that? (I want a new "copy" of jsonobj).

I made this test case: http://jsfiddle.net/WSgVz/

share|improve this question
5  
Excellently-formed question and testcase. It's incredibly sad that this is so rare nowadays. –  Lightness Races in Orbit Jul 6 '11 at 19:26
add comment

5 Answers 5

up vote 3 down vote accepted

That is because the object is not copied. The obj.key property will only contain a reference to the object, so when you assign something to obj.key.test the effect is the same as assigning it to jsonobj.test.

You can use the jQuery method extend to create a copy:

obj.key = $.extend({}, jsonobj);

This will copy the values into the newly created object ({}).

share|improve this answer
3  
Also worth noting you'll need $.extend(true, {}, jsonobj) for deep copy (as opposed to shallow one-level copy). –  Domenic Jul 6 '11 at 19:38
    
@Domenic: Good point, that's good to know for more complex object structures. –  Guffa Jul 6 '11 at 20:31
add comment

I want to address a small piece of what is going on here, since others have done so well addressing the larger issues of JavaScript object references:

// second console output
console.log(jsonobj);

obj.key = jsonobj;
obj.key.test = "why does this affect jsonobj? (even in the second console output)";

This is the result of a documented WebKit bug, that console.log statements do not output the object at the time of calling console.log, but instead some time later.

share|improve this answer
    
I tried to make it much clearer what I was getting at this time around, so please explain any -1 votes... –  Domenic Jul 6 '11 at 19:36
    
oh ok, this only contributed to my former false understanding of how javascript handles object copying/delegation. thank you for pointing this out ;). –  Marcel Jul 6 '11 at 19:42
    
Changed my -1 to a +1. At the time of my vote you didn't have as detailed of an answer. Now I have egg on my face. –  used2could Jul 6 '11 at 20:07
add comment

Because when you do obj.key = jsonobj, there isn't some new, copied object in obj.key; it's just a reference to the jsonobj that already exists. So changes to obj.key will also change jsonobj, because they're actually the same thing.

share|improve this answer
add comment

This is because there is no copying going on -- there is only one object, which is referenced by various variables and properties. When you do obj.key = jsonobj, you are merely copying the reference to the same object.

share|improve this answer
add comment

All objects in JavaScript are copied by reference, meaning:

var x = {};
var y = x;
x.foo = 22; // y.foo also = 22 since y and x are the same object

If you want obj.key != jsonobj, you need to clone the object. By creating a new object:

obj.key = $.parseJSON(objstring);

or using jQuery to clone the existing one:

obj.key = $.extend({}, jsonobj);
share|improve this answer
    
But I don't seem to find the answer behind the output of the second log.......... –  Sayem Ahmed Jul 6 '11 at 19:31
    
the 2nd log statement is just wrong, per Domenic's answer. If you want a valid console.log: console.log(JSON.stringify(jsonobj)) –  zyklus Jul 6 '11 at 19:35
add comment

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.