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Why a referenced object is not set to null when parent object is set to null in JavaScript?

var objA = { 1 : "hello" };
var objB = objA;
objA = null;

console.log(objB);  // { 1 : "hello" }

Why objB is not set to null? How object referencing works here?

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3 Answers

up vote 3 down vote accepted

Variables never "contain" objects, they simply contain a reference to an object.

var objB = objA; simply copies the reference stored in objA, making them point to the same object. When objA is set to null, it means that it no longer points to anything. However, objB still contains a reference to the object.

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In your example, objB does not reference objA. It references the thing that objA is currently referencing. Therefore, modifying objA has no effect on objB.

Think of it this way:

var a = "test"; //a -> "test"
var b = a;      //a -> "test" <- b
a = null; //a -> null, "test" <- b

Consider the following image:

image

This is what your first two lines do: set a and b to point to the same object. Now when you change b to null:

image

a is unchanged.

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Why do you think it copies the value? –  VisioN Jan 19 '13 at 14:06
    
@VisioN Sorry, my wording was a bit ambiguous. Edited –  Doorknob Jan 19 '13 at 14:06
2  
+1 for images :) –  VisioN Jan 19 '13 at 14:13
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It works just as it works on any other value. Try using numbers or strings instead of objects:

var objA = 5
var objB = objA
objA = null;

The only special thing about objects (as opposed to numbers, etc) is that objects are mutable so if you set a property of an object then all variables that reference that object will see the change.

Perhaps the word reference is confusing you to think it has the same meaning in as it has in C++. In fact, what happens in Javascipt is that variables behave more like pointers (but without the pointer arithmetic and with derefferencing being implicit). So if you have two variables pointing to the same object then if you change properties via oe pointer it will also be visible via the other pointer. On the other hand, if you change the value of the pointer by assigning it to some other pointer then the other pointers that used to point to that place don't get changed.

So, translating your example to C it could look something like

Obj *a = malloc_new_obj()
Obj *b = a;

//Both pointers point to the same object
a->some_property = 10
printf("%d\n", b->some_property); //should get 10 too

//but assigning the pointer itself doesn't change the otehr pointers
a = NULL;
printf("%d\n", b->some_property); //should still work

var objB = objA; objA = null;

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@VisioN: I wanted to change the value to a number but forgot to actually do that. –  hugomg Jan 19 '13 at 14:06
    
Exactly! That's why C knowledge is mandatory for every programmer, even if she doesn't write any C code at all. –  gdbdmdb Jan 19 '13 at 14:12
1  
This answer is incomplete and unhelpful. Comparisons to a language that the OP likely doesn't now will just confuse the issue, and comparing primitive value assignment to object references just glosses over what's actually happening and the possibility to share references. It sounds like he's looking for an explanation that is simple, not technical and analogous. –  Matt Whipple Jan 19 '13 at 14:12
    
@MattWhipple: calm down dude. how are you so sure the OP doesn't know C++, given how its one of the few common language nowadays that actually has references that do what he was thinking of. And honestly I don't see how this is glossing over anything. The assignment semantics really are equivalent to C++ pointers. –  hugomg Jan 19 '13 at 14:16
    
@thg435 Saying C knowledge is mandatory downplays alternate paradigms. If you work with functional languages, then C will just lead to poor practice. –  Matt Whipple Jan 19 '13 at 14:17
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