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I'm attempting to create something of a tree structure.

I wish to access my data as follows:

data[key1][key2]

However, key1 and key2 have a symmetric relationship; the following is always true:

data[key1][key2] == data[key2][key1]

More specifically, I have data[key1][key2] and data[key2][key1] pointing to the same object, such that changes to one affect the other.

My problem arises because I wish to delete the underlying object. I know if I use:

delete data[key1][key2];

data[key2][key1] still refers to the object.

My question is this: is there any way to remove the underlying object, or overwrite it with something falsey, such that both properties above will evaluate falsey?

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2  
Not inherently, but you do something like (whichever is easier in your scenario); adding an isDeleted property to the object, or wrapping the structure in a "manager", which controls the addition, retrieval and deletion of these elements. –  Matt Sep 25 '12 at 22:46
    
Thanks @Matt, I'd considered these options but I'm trying to a) avoid them and b) learn something new! –  mkingston Sep 25 '12 at 22:48
    
If data[key1][key2] and data[key2][key1] always refer to the same object, why bother with two references at all? You could have one reference, and sort the keys alphabetically in a method you call to retrieve a value. –  cHao Sep 26 '12 at 0:01
    
@cHao you're right, I could simply use something like data.get(key1,key2), or even data(key1, key2). The point of the question was to avoid a wrapper/helper method, and hopefully to learn something- which I suppose was that I will have to make some form of helper/wrapper method. –  mkingston Sep 26 '12 at 1:07

3 Answers 3

up vote 3 down vote accepted

Think of it like this:

data[key1][key2] -----> object1
                          ^
data[key2][key1] ---------+

If you change the key for one of them (say the latter) to a new object you'll just get this:

data[key1][key2] -----> object1

data[key2][key1] -----------> object2

(Or the key will simply be missing if you delete it:)

data[key1][key2] -----> object1

data[key2]

That is, you'll change one of the references but not the other. Any attempt to replace only one of them will accomplish this. You have two options:

a) Change both keys to point to the new object:

data[key1][key2] -----> object2
                          ^
data[key2][key1] ---------+

(Or delete both keys:)

data[key1][key2]       object1 (no references, will be garbage collected)

data[key2][key1]

b) Modify a field on the object itself. This way they'll both still be pointing to the same object, but something about it will be different. Any code that you use will have to take this into account, though.

data[key1][key2] -----> object1 with 'isDeleted'=true
                          ^
data[key2][key1] ---------+

The a) option seems to make the most sense given your use case. If you have both keys anyway, why not update/delete both?

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All valid points, I guess I didn't make it clear enough that I understand all this. I guess "No" is probably a sufficient answer to my question. As for this: If you have both keys anyway, why not update both? I'm just trying to learn something. Thank you for your response. –  mkingston Sep 25 '12 at 22:57
    
I'm looking for c(++) functionality in javascript, I suppose :). –  mkingston Sep 25 '12 at 22:59
1  
@mkingston: How would you do what you asked in C/C++? i don't see any other way to do what you asked in those languages, either. –  Claudiu Sep 25 '12 at 22:59
    
free/delete, resulting in a hanging pointer? –  Justin Thomas Sep 25 '12 at 23:07
1  
@mkingston: that's true, but then you'd have to know whether to read the void* as your object or as the 'falsey' value. the equivalent here would be to add a 'deleted' property to the object - both require you to change your code to accomodate that decision. oh and no worries about "just trying to learn something", that's how we get better at stuff =). EDIT: yea you can't free the data in JS but you can modify it with the 'deleted' approach, it seems to me the 2 are analogous –  Claudiu Sep 25 '12 at 23:14

The valueOf() method might offer a solution. If you're doing an explicit comparison to a boolean value, valueOf will be called as part of the type-casting to Boolean. For example, let's say your data structure references some object, x ...

> x = {}
Object
> (x == false ? 'yes' : 'no')
"no"
> x.valueOf = function() {return false;}
function () {return false;}
> (x == false ? 'yes' : 'no')
"yes"

... i.e. if data[key1][key2] == data[key2][key1] == x, then assigning x.valueOf = function() {return false;} will change what x evaluates to when explicitely caste to a boolean. So as long as you're testing for data[key1][key2] == false, x should appear to be falsy.

However, you need to be careful with this because x is less falsy than a primitive value. E.g. Even after assigning valueOf as above, implicit coercions still appear to be truthy ...

(x ? 'yes' : 'no')
"yes"
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Thanks. I came to the same conclusion myself. Bit of a bummer about the implicit conversions, but I suppose it's probably good in a larger sense, as it still behaves the way you expect, i.e. if(a.b) meaning does property 'b' exist. –  mkingston Sep 25 '12 at 23:59
    
Modifying valueOf is not a good idea as it's only used in certain expressions involving comparison algorithms, not in type conversions. E.g. Boolean(x) and !!x will both return true because valueOf isn't used for type conversion. –  RobG Sep 26 '12 at 0:03

You've probably got what you need from other the answers, but to summarise:

My question is this: is there any way to remove the underlying object

No. You can remove all references to it to make it available for garbage collection. When the garbage collector runs (at some unspecified time), it will remove the object.

or overwrite it with something falsey, such that both properties above will evaluate falsey?

Not exactly. You can only assign a new value to each property so that they evaluate to false (false, null, undefined, 0, etc.). Objects don't keep track of the identifiers that reference them, so there is no general way to say "remove all reference to this object". If you want to do that, you'll have to keep track of references and change their values yourself.

An alternative is to give the object a property to indicate whether it should be used or not (e.g. "obsolete"), that can be checked when accessing other properties. A public property is pretty simple, or you can create a "private" member using a closure in the constructor:

function Foo() {
  var obsolete = false;

  this.obsolete = function (){
    return obsolete;
  };

  this.delete = function (){
    obsolete = true;
  };
}

var foo = new Foo();
var bar = new Foo();

alert(foo.obsolete() + ', ' + bar.obsolete()); // false, false

foo.delete();

alert(foo.obsolete() + ', ' + bar.obsolete()); // true, false

That will work much the same as you want. If you could delete objects you'd need to do:

if ( data[key1][key2] ) {
  // do stuff
}

Using the above method you'd do:

if ( !data[key1][key2].obsolete() ) {
  // do stuff
}

Noting that the object still actually exists. You may want to change obsolete to current and reverse the boolean so you check if (obj.current()) rather than if (!obj.obsolete()). Whatever suits.

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