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In Python, with two dictionaries, simply doing

dict2 = dict1

Will not cause dict2 to be a distinct copy of dict1. They will point to the same thing, so modifying dict2 will perform the same effect on dict1.

One workaround is

dict2 = dict(dict1)

So if I were to modify dict2, it would not affect dict1's values.

In my program, I'm currently making a dictionary that's composed of multiple copies of a previous dictionary. Let's call the previous dictionary temp2, and the current one temp3. I don't know how many copies I'll need in advance, so I thought of doing this:

temp3 = {}
for i in xrange(some_number):
    temp3[i] = dict(temp2)

But my debug tests show that if I modify temp3[0]'s dictionary (which, again, is a copy of temp2), then this will also modify temp3[1]'s copy, and temp3[2], etc., so the result is a dictionary that consists of n identical copies of a dictionary, where n = some_number. Does anyone know of a workaround? Thanks.

EDIT: In response to a comment, temp2 is a dictionary composed of values that are lists, so {a: [list1], b: [list2], etc.}.

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1  
Nope, you made copies, so I think your analysis is incorrect. What is contained in temp2? Are there other mutable values contained inside the dictionary (nested dicts or lists, etc.)? –  Martijn Pieters Feb 10 '13 at 21:15
    
I first made temp2 from another dictionary, so it was of the form temp2 = dict(temp1). temp2 is indeed composed of nested lists. temp2 = {a: [list1], b: [list2], etc..}. I should probably add that to the original post... –  TakeS Feb 10 '13 at 21:19

1 Answer 1

up vote 3 down vote accepted

Try the copy.deepcopy method: http://docs.python.org/2/library/copy.html

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Yeah, that worked. Heh, I feel like an idiot ... –  TakeS Feb 10 '13 at 21:25
    
I wasn't aware of deepcopy() actually going that deep. In my reproduction of the problem, I just got the wrong impression by accidently setting the wrong list item. Deleted my answer. –  J. Katzwinkel Feb 11 '13 at 2:00

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