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how is that that I change class A ? first one prints:

{"s":1, "b":2}

second one

{"s":3, "b":2}

but i think i should get same as first one

class A():
    def __init__(self, **kwargs):
        self.g =""

        for key, value in kwargs.items():
            setattr(self, key, value)           

class B():
    def __init__(self, classA):
        self.f = classA.g


a = A(g={"s":1, "b":2})

print (a.g)

b = B(a)
b.f["s"]=3

print (a.g)
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1 Answer 1

What happens in the following:

When you instantiate b = B(a), your B.__init__ method sets b.f = a.g.

The easier way to grasp this is to consider a.g and b.f as references to another object (the actual dict). This means that they point to an object - they are not the object itself.

Doing b.f = a.g means that b.f now references the same underlying object that a.g does, that's all.

When you do b.f["s"]=3, you're modifying the underlying object that b.f references.

This happens to be the same one that a.g references, so a.g is "changed" too!


In reply to your comment:

When you do b.f={"s":3, "b":2}, you take the following steps:

  1. Create a new dictionary: {"s":3, "b":2}
  2. Modify the b.f reference so that it now points to this new dictionary (and has nothing to do with the old one anymore!)

This is equivalent to:

new_dict = {"s":3, "b":2}
b.f = new_dict

The a.g reference is left untouched and, hence, unchanged.
As a consequence, a.g and b.f do not reference the same underlying object anymore.

share|improve this answer
    
..better explained, in Python mutable types (ie. pretty much everything a part form string, integer, boolean and None) is always passed by reference, not by value. In your case, I think what you want is a copy; a common way to copy dictionaries is newdict = dict(olddict) –  redShadow Oct 29 '12 at 23:57
    
@redShadow I expected that maybe the person who asked the question is not entirely familiar with pass-by-reference and pass-by-value, but feel free to add an answer with that take! :) –  Thomas Orozco Oct 29 '12 at 23:58
    
To add to the above, if the desired effect is that b.f is a different object than a.g, you can make a deepcopy using copy.deepcopy() –  Junuxx Oct 29 '12 at 23:58
    
why it works like this ? a = A(g={"s":1, "b":2}) print (a.g) b = B(a) b.f={"s":3, "b":2} print (a.g)You may only edit a comment every 5 seconds.(click on this box to dismiss) –  Alex Oct 30 '12 at 0:03
    
yeah, my comment was pretty much half-way between ThomasOrozco's answer and Junuxx's comment.. :P Anyways, I was thinking about going to sleep, that's why I didn't write a fully-featured answer :) –  redShadow Oct 30 '12 at 0:04

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