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My attempt to programmatically create a dictionary of lists is failing to allow me to individually address dictionary keys. Whenever I create the dictionary of lists and try to append to one key, all of them are updated. Here's a very simple test case:

data = {}
data = data.fromkeys(range(2),[])
data[1].append('hello')
print data

Actual result: {0: ['hello'], 1: ['hello']}

Expected result: {0: [], 1: ['hello']}

Here's what works

data = {0:[],1:[]}
data[1].append('hello')
print data

Actual and Expected Result: {0: [], 1: ['hello']}

Why is the fromkeys method not working as expected?

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up vote 40 down vote accepted

Passing [] as second argument to dict.fromkeys() gives a rather useless result – all values in the dictionary will be the same list object.

In Python 2.7 or above, you can use a dicitonary comprehension instead:

data = {k: [] for k in range(2)}

In earlier versions of Python, you can use

data = dict((k, []) for k in range(2))
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Well this is rather unintuitive behavior, any idea on why the same object is used for all keys? – Bar Apr 13 at 19:05
1  
@Bar Because there is nothing else the function could do within the semantics of the Python language. You pass in a single object to be used as value for all keys, so that single object is used for all keys. It would be better for the fromkeys() method to accept a factory function instead, so we could pass in list as a function, and that funciton would be called once for each key created, but that's not the actual API of dict.fromkeys(). – Sven Marnach Apr 13 at 20:30

Use defaultdict instead:

from collections import defaultdict
data = defaultdict(list)
data[1].append('hello')

This way you don't have to initialize all the keys you want to use to lists beforehand.

What is happening in your example is that you use one (mutable) list:

alist = [1]
data = dict.fromkeys(range(2), alist)
alist.append(2)
print data

would output {0: [1, 2], 1: [1, 2]}.

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2  
In my case, I need to initialize all the keys beforehand so the rest of the program logic can work as expected, but this would be a good solution otherwise. Thanks. – Martin Burch Jul 16 '12 at 18:06
    
Wow, defaultdicts are like bacon! Thanks for this. – Spanky Mar 12 '14 at 22:43

You are populating your dictionaries with references to a single list so when you update it, the update is reflected across all the references. Try a dictionary comprehension instead. See Python: create a dictionary with list comprehension

d = {k : v for k in blah blah blah}
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