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What is a guaranteed way to compare two objects by their identity in Ruby? Given two variables, I want to return true if the variables point to the exact same object in memory.

For most Ruby objects, the equal? method compares by identity:

f = g = Object.new
p f.equal? g  # => true

However, this doesn't work for all objects. For example:

class F
  def ==(obj) false end
  def ===(obj) false end
  def eql?(obj) false end
  def equal?(obj) false end
  def object_id; self end
end

f = g = F.new
p f == g       # => false
p f === g      # => false
p f.eql? g     # => false
p f.equal? g   # => false
p f.object_id == g.object_id  # => false

What is a foolproof/guaranteed way of comparing two objects by identity which can't be defeated?

This is a purely intellectual question. The answer to any question that begins with "why" will probably be "Because I am curious."

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What's the word for things in computer science and math like F? There is some word for it. I want to say "diabolical", but less evil. –  David Grayson Oct 25 '11 at 4:22
    
I think the word is "wrong." As in, it is not a thing you should do. –  Chuck Oct 25 '11 at 4:26
1  
I want to use a word that begins with "F"... There are no guarantees unless you want to write a C extension, you're supposed to be polite but there's nothing stopping anyone from being an anti-social sociopath. –  mu is too short Oct 25 '11 at 4:40
    
You'd be able to tell that something was amiss by the fact that object_id wasn't an integer. –  Andrew Grimm Oct 25 '11 at 5:22
1  
@Andrew: def object_id; rand(10000) end. And how do you rely on "see if the object equals itself" when faced with a pathological case like F? The real underlying problem is that we don't know how to ask Ruby if two objects are equal, we can only ask the objects if they're equal; if we can't trust the objects to behave then what do we do? –  mu is too short Oct 25 '11 at 17:54
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3 Answers 3

up vote 6 down vote accepted

You could grab an unbound version of Object#object_id, bind it to the object in question, and see what it says. Given your F class with one addition:

class F
  # ...
  def inspect; 'pancakes!' end # Just so we can tell what we have later.
end

Then:

>> f = F.new
>> f.object_id
=> pancakes!
>> unbound_object_id = Object.instance_method(:object_id)
>> unbound_object_id.bind(f).call
=> 2153000340
>> ObjectSpace._id2ref(2153000340).inspect
=> "pancakes!"

Of course, if someone opens up Object and replaces object_id then you're out of luck but this will be the least of your problems if someone does that. If you can grab your unbound_object_id UnboundMethod before anything else is loaded, then it won't matter if someone changes Object#object_id as your unbound_object_id will still be the original correct one.

So this round-about hack gives you a reliable object_id for any object (subject to the caveats above). Now you can grab and compare the object ids to get your reliable comparison.

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Great, it works! I'd just like to contribute a function that uses this technique to compare two variables by identity: def compare_by_identity(x, y); id = Object.instance_method :object_id; id.bind(x).call == id.bind(y).call; end –  David Grayson Oct 26 '11 at 2:34
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Use BasicObject#equal?. According to Ruby documentation:

Unlike ==, the equal? method should never be overridden by subclasses: it is used to determine object identity (that is, a.equal?(b) iff a is the same object as b).

Need stronger guarantee? AFAIK can't receive it, BaseObject#object_id, ObjectSpace._id2ref, Hash#compare_by_identity can be overriden or monkey patched too (at least this is my personal belief).

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You can provide your own def equal?(other) false end implementation if you have a sufficiently hateful attitude. –  mu is too short Mar 7 '13 at 4:35
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The answer by mu is too short is great, but there is another way you can do it using a special feature of the Hash class:

def compare_by_identity(x, y)
  h = {}.compare_by_identity
  h[x] = 1
  h[y] = 2
  h.keys.size == 1
end

The compare_by_identity feature was added in Ruby 1.9.2, so this function won't work in earlier versions. I think mu is too short's answer is better.

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