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Here is a simple code that performs operations on lists:

>>> a = [0] * 5
>>> a
[0, 0, 0, 0, 0]
>>> a[0] = 5
>>> a
[5, 0, 0, 0, 0]
>>> 

For now, nothing abnormal.

Now, I try to do the same with a list of dictionaries instead of a list of integers:

>>> a = [{}] * 5
>>> a
[{}, {}, {}, {}, {}]
>>> a[0]['b'] = 4
>>> a
[{'b': 4}, {'b': 4}, {'b': 4}, {'b': 4}, {'b': 4}]
>>> 

I don't understand why all elements of my list are modified...

Can anyone tell me why? And also provide a workaround?

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1  
See this answer for an in-depth explanation of this behaviour. –  Lauritz V. Thaulow Dec 22 '11 at 11:46
    

1 Answer 1

This is not weird.


Workaround:

a = [{} for i in xrange(5)]

[…] * 5 creates one and a list of five pointers to this .

0 is an immutable integer. You cannot modify it, you can just replace it with another integer (such as a[0] = 5). Then it is a different integer.

{} is a mutable dictionary. You are modifying it: a[0]['b'] = 4. It is always the same dictionary.

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1  
+1 This creates a list of 5 dictionaries, rather than a list of 5 references to a dictionary. Why? Guido made it that way! Dictionaries are accessed by reference. –  Codie CodeMonkey Dec 22 '11 at 11:14
    
The mutability has nothing to do with it. a[0] = {'b': 4} would have worked perfectly well; the key is that the original code makes no attempt to replace the dictionary. –  Wooble Dec 22 '11 at 12:25
    
-1: It's not a "workaround". It's "correct use of mutable objects". –  S.Lott Dec 22 '11 at 13:07
    
OK thanks a lot! :) –  Julien REINAULD Dec 22 '11 at 13:11
    
Do I have to close post? If yes how do I do this? –  Julien REINAULD Dec 22 '11 at 13:12

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