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Why is the assignment operator is not making a copy of the rvalue but a reference to that(on a list), and you have to use slices in order to make a real copy which creates an independent object so that changes on one does not affect the other. Is this related to some specific usage related the language that I missed until now?

Edit: what I understod is that in C++

int a = 1;
int b = a;
b = 2;    // does not affect a 

so I also thought that would be the same reasoning since Python is developed in C and it takes care of it with pointers most probably. With some simple code:

int a = 1; 
/*int b = a;*/
int &b = a; /* what python does as I understood, if so why it does that this way?*/ 

is that more clear?

What I asked was more a comparison question on which I should be more clear, I agree ;-)

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2  
Please read up on "mutable" structures. Lists (and dictionaries) are special because their mutable. After reading up on "mutable", please update your question to be more specific. –  S.Lott Apr 7 '11 at 11:48
1  
S. Lott speaks truth and breathes justice. –  jathanism Apr 7 '11 at 11:52
    
Variables in Python are references to objects. That's how it's designed. If slicing feels ugly, there's the copy module. –  Thomas K Apr 7 '11 at 11:55
1  
@S.Lott, what does it have to with mutability? Tuples are the same way and they're immutable. –  Ram Rachum Apr 7 '11 at 12:08
    
@cool-RR: Depends on what part of the question you're interested in. "Why is the assignment operator is not making a copy" is one thing. "you have to use slices in order to make a real copy" is another thing. And "Is this related to some specific usage related the language that I missed until now?" is largely unanswerable noise. So, I figured that a little reading might help clarify what the real question is. –  S.Lott Apr 7 '11 at 12:22

2 Answers 2

up vote 2 down vote accepted

I recently posted an answer that discusses exactly this issue.

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nice link and good explanation, my understanding is more or less correct so I am happy... +1 for that –  Umut Tabak Apr 7 '11 at 13:11
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@Umut Tabak: Under the answer is a "tick mark" that you can click to show your happiness. –  S.Lott Apr 7 '11 at 13:17
    
well right :) I did that... –  Umut Tabak Apr 7 '11 at 13:20
    
You're welcome Umut Tabak. –  Noufal Ibrahim Apr 7 '11 at 13:23
    
Reading a bit more about the classes, I guess this reference isssue is related to garbage collection that is automatic in python, so that for 'free'ing these pointers automatically, maybe not complete but I guess right reasoning –  Umut Tabak Apr 8 '11 at 7:41

In python, everything can be considered as a reference. If you want an assignment to be a copy, you always need to put it excplicitely in your expression

a = range(10) # create a list and assign it to "a"
b = a  # assign the object referenced by "a" to b
a is b # True --> a and b are two references to the same object. Works with any object 
       # after b = a
from copy import deepcopy
c = deepcopy(a) # or c = a[:] for lists
c is a # False
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An object is a named storage and the name is how you refer to the memory location, this is what I know. From this perspective, a = [1,2,3] , so [1,2,3] is the real object that is stored in memory and a is the name of the container that holds this object, is that right, first of all? What I was thinking was that assignment is making the copy automatically but apparently it does not work that way... –  Umut Tabak Apr 7 '11 at 12:26
    
no it doesn't. "b = a" only gives a new name to an object stored in memory. –  Simon Apr 7 '11 at 12:47

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