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I started learning python few days ago (with no prior programming experience nor knowledge) and am currently stuck with the following thing I do not understand: Let' say I have an unsorted list "b" and I want to sort a list "c" which looks exactly like list "b":

b = [4,3,1,2]
c=b
c.sort()

print b
print c

What I discovered is that both b and c are sorted: [1,2,3,4] [1,2,3,4]

Why is that so?

It seems this solution works perfectly when I create a copy of the "b" list:

b = [4,3,1,2]
c=b[:]
c.sort()

print b
print c

Results in: [4,3,1,2] [1,2,3,4]

But why does the first solution not work?

Thank you.

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3 Answers 3

up vote 0 down vote accepted

In the first sample, you are copying b into c by reference, which means that whenever any change (sorting, for example) is made on b, it will be applied on c, because basically they both point to the same object.

In the second sample, you are copying the array by value, not by reference, which create an entirely new object in the memory. Therefore, any changes made on the one of them will not be applied on the other one.

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Thank you Kocko. Does that mean that whenever I need to copy some variable, I should never use the copying by reference as it might cause problems like these? –  stgeorge May 19 '13 at 0:44
    
Depends on what you need. :) –  kocko May 19 '13 at 0:48
    
Could you elaborate this a bit more? I what case copy by reference could be useful? –  stgeorge May 19 '13 at 0:56
    
For instance in the cases when you want to pass an object to a method, you're passing the object by reference, not by value, and if the method modifies the object internally, this modification will be visible outside the method. –  kocko May 19 '13 at 1:11
    
I already understood(on the basic level) most of things but not classes. So if that "object" you mentioned is related with classes, I will have to get back to this once I understand the classes. Thank you anyhow. –  stgeorge May 19 '13 at 1:26

You already seem to understand that c = b is different to c = b[:]. In the first case c references the same object as b. In the latter it references a copy of b.

So it shouldn't be surprising that since b.sort() sorts the list referenced by b, When you inspect c it is also sorted - because it's the same object

The usual way to decouple a sorted list from the original is

c = sorted(b)
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Because in the first solution, b and c both point to the same object. The slicing in the second solution creates a new object with the same contents as the old.

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Shallow copy issue? –  squiguy May 19 '13 at 0:15
1  
@squiguy: Reference copy. "Shallow" here has a different implication. –  Ignacio Vazquez-Abrams May 19 '13 at 0:16
    
Oh, thanks for clarifying. –  squiguy May 19 '13 at 0:20

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