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I am not sure about the meaning of "...but not the objects they reference" in both the documantion of ruby and rubinus.

In ruby-doc, there is the explanation of #clone and #dup behavior saying:

Produces a shallow copy of obj—the instance variables of obj are copied, but not the objects they reference. Copies the frozen and tainted state of obj. See also the discussion under Object#dup.

The same is repeated in the implementation of Rubinius:

Copies instance variables, but does not recursively copy the objects they reference. Copies taintedness.

I tried out with the following code, but the behavior is out of my expectation.

class Klass
   attr_accessor :array

s1 =
ar = [1, 2, 3]
s1.array = [ar]

s2 = s1.clone
# according to the doc,
# s2.array should be initialized with empty Array
# however the array is recursivley copied too

s2.array.equal? s1.array # true
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2 Answers 2

up vote 3 down vote accepted

In Ruby, all objects are references. Take a look at the following example:

class Klass
  attr_accessor :a

s1 =
a = [1,2,3]
s1.a = a
s2 = s1.clone
s1.a.object_id  #=> 7344240 
s2.a.object_id  #=> 7344240 

You can see that both of the arrays are the same object, and are both references to the array living somewhere in the heap. In a deep copy, the array itself would have been copied, and the new s2 would have its own, distinct array. The array is not copied, just referenced.

Note: Here's what it looks like if you do a deep copy:

s3 = Marshal.load(Marshal.dump(s1)) #=> #<Klass:0x00000000bf1350 @a=[1, 2, 3, 4], @bork=4> 
s3.a << 5 #=> [1, 2, 3, 4, 5] 
s1 #=> #<Klass:0x00000000e21418 @a=[1, 2, 3, 4], @bork=4> 
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I think the second s1.a.object_id #=> 7344240 should be s2.a.object_id. Althrough they do reference the same array object. – steveyang Apr 24 '13 at 13:37
So "...does not recursively copy the objects they reference." means, only copy the referer(pointer), not the reference, right? – steveyang Apr 24 '13 at 13:38
@steven.yang: Whoopss! Thanks. – Linuxios Apr 24 '13 at 13:38
@steven.yang: Not the object, right. – Linuxios Apr 24 '13 at 13:39
So, the behavior I wrote in the question is exactly the what should be implemented. Got it. – steveyang Apr 24 '13 at 13:40

The "equal?" comparison checks whether they are exactly the same object:

  • The == comparison checks whether two values are equal
  • eql? checks if two values are equal and of the same type
  • equal? checks if two things are one and the same object.

for example :

=> [1, 2] 
a == [1,2]
=> true 
a.eql? [1,2]
=> true 
a.equal? [1,2]
=> false 
a.equal? a
=> true

As you are testing using equal? it shows the copy has not made an object with the array being uninitialized, but it has made the copied object point to the same array as the original. If it recursively copied the opjects s2.array would have the same contents as s1.array but would be a different object so:

s2.array.equal? s1.array # false
s2.array.eql? s1.array # true
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How does this answer the question? – Linuxios Apr 24 '13 at 13:35
I have edited and added a little more detail – Ian Kenney Apr 24 '13 at 13:43
I undid my vote. – Linuxios Apr 24 '13 at 13:44

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