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I have lived under the assumption that there are primitive types and reference types in Javascript. On a day-to-day basis, I've never had this impact me but I was just starting to a lot more JS and wanted to update my 'thinking'. In other words, I would have betted $20 that the following would return 68

var my_obj = {};
var tmp_obj = {};

tmp_obj.my_int = 38;
my_obj.tmp_val = tmp_obj.my_int;
tmp_obj.my_int = 68;

alert('68 means reference, 38 means primitve: ' + my_obj.tmp_val);

but it returns 38.

enter image description here

Are all instances of numbers primitive types even if they exist in the context of a reference type? If y, I'm really surprised and find that odd behavior(and would be out $20). Or is my example not demonstrating what I think it is?

thx in advance

UPDATE #1

Wow, thx for all the answers. Here's a slight change which helps me a lot in understaning:

var my_obj={};
var tmp_obj={};
var my_obj_2=tmp_obj;
tmp_obj.my_int=38;
my_obj.tmp_val=tmp_obj.my_int;
tmp_obj.my_int=68
alert('68 means reference, 38 means primitve: ' + my_obj.tmp_val);   // 38
alert('68 means reference, 38 means primitve: ' + my_obj_2.my_int);  // 68
my_obj_2.my_int=78;
alert(tmp_obj.my_int); // tmp_obj is now 78 ie two way
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5  
my_obj and tmp_obj are two independent objects. Setting the value of a property of one of them won't affect the other object, no matter where the original value came from. It's the same for var a = 1; var b = a; a = 2;... b will still be 1. –  Felix Kling Jan 21 '13 at 16:51
    
Compare with: tmp_obj = my_obj; tmp_obj.my_int = 68; alert(my_obj.my_int). –  bfavaretto Jan 21 '13 at 16:51
4  
@FelixKling ...and regardless of whether or not the property is primitive or reference type. –  Matt Ball Jan 21 '13 at 16:52
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5 Answers 5

up vote 3 down vote accepted

You example would work as expected if you had

     my_obj = tmp_obj;

Then, all the properties would point to the same reference since there would only be one object.

But when you write

     my_obj.tmp_val = tmp_obj.my_int;

then my_obj.tmp_val will take the value that's stored in tmp_obj.my_int but that doesn't create a new reference between the 2 objects.

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this is basically what I didn't understand correctly; thank you very much! –  timpone Jan 21 '13 at 17:40
    
ok, happy coding!! –  frenchie Jan 21 '13 at 17:42
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If I may use a Java-like syntax, it appears you expected the code to behave like this, where there is an integer object that has its value mutated.

tmp_obj.my_int = new Integer(38);
my_obj.tmp_val = tmp_obj.my_int;
tmp_obj.my_int.setValue(68);

Since it doesn't print 68 you conclude that integers must be a primitive type not a reference type. That doesn't necessarily follow, though. Consider this alternate interpretation:

tmp_obj.my_int = new Integer(38);
my_obj.tmp_val = tmp_obj.my_int;
tmp_obj.my_int = new Integer(68);

Here integers are reference types but my_obj.tmp_val will still contain the value 38, because assigning to an integer means overwriting references.

You can think of integers as being immutable objects. JavaScript does a very good job of presenting a unified everything-is-an-object view, so this is a better interpretation of the results than "integers are primitive types".

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It's kind of funny to answer a question about one language with examples from another language, but you bring it to the point. Nice answer +1. (since you cannot even change the value of Number objects in JS, there really is no good way to demonstrate this in JS). –  Felix Kling Jan 21 '13 at 16:59
    
thx for answer, makes better sense to me –  timpone Jan 21 '13 at 17:44
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I have lived under the assumption that there are primitive types and reference types in Javascript.

That's true. The only reference values are objects, though; primitive values are not mutable.

Are all instances of numbers primitive types even if they exist in the context of a reference type?

Yes. Their context is not relevant.

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Arrays are also references. –  Barmar Jan 21 '13 at 17:05
3  
@Barmar: arrays are also objects. –  Bergi Jan 21 '13 at 18:13
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Yes, values like numbers and strings work like primitive values. They are immutable. Assigning a new value to a variable replaces the old value, it doesn't change the value that's there.

Example:

var x = 42;
var y = x; // y == 42
x = 1337; // this puts a new value in x, it doesn't change 42 to be 1337
alert(y); // it's still 42

The same works for strings:

var x = "42";
var y = x; // y == "42"
x = "1337"; // this puts a new string in x, it doesn't change "42" to be "1337"
alert(y); // it's still "42"

Also if you use object properties;

var o = {};
o.x = 42;
o.y = o.x; // o.y == 42
o.x = 1337; // this puts a new value in o.x, it doesn't change 42 to be 1337
alert(o.y); // it's still 42

How a value acts only depends on its type, not wether it's stored in a regular variable or in a property in an object.

Even if strings are implemented as an object internally, it's immutable and works as a value. Copying a string may copy a reference to an object, but the effect is that you get a separate copy, because nothing can change the string value itself.

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I believe there are two key things to understand here:

  1. Primitive values are never references
  2. JavaScript references can never be assigned to, just copied around.

Considering this code to demonstrate the first point:

var a = 10,
    b = a,
    c = {foo : 20}
    d = c.foo;

b = 20;
d = 30;
a;     // 10;
c.foo; // 20;

So, you have "slots" (variables or properties) holding primitive values, not references. Changing the value in one of those slots won't affect the others.

Considering the second point:

var a = {foo: true},
    b = a;
b.foo; // true
b.foo = false;
a.foo; // false;
b = {bar: false};
a;     // {foo: false}

Variable a contains an object, and b is initially a reference to the same object. Assigning to b.foo affects a, since b and a are pointing to the exact same object. However, those references are just like any other value stored in a given slot: when you assign something else to the slot, the reference just gets replaced with a different value. So assigning to b doesn't affect a.

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very good point, I had to read through twice to get subtleties - so assigning can create like a hybrid object where there are parts that are part of the reference and parts that are separate. –  timpone Jan 21 '13 at 17:26
    
No, I believe my explanation is confusing, I'll reword it. If you try to change b.foo before assigning something else to b, it would affect a. But after b = {bar: false};, there's no more link between the two objects. There are no hybrid objects. –  bfavaretto Jan 21 '13 at 17:29
    
ok, so similar to maybe copy-on-write in the UNIX process model. –  timpone Jan 21 '13 at 17:33
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