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I'm getting a data set that's formatted as a list of key-value pairs. The key is the data source, and the value is the data element. For example:

[('a', 3), ('b', 5), ('a', 7), ('c', 15), ('d', 12)]

I want to turn this list into a dictionary. I could use Python's built-in dict(), but it throws away redundant values and keeps only the last value associated with a given key. I would like redundant values to go into a list, as follows:

{'a': [3, 7],
'b': [5],
'c': [15],
'd': [12]}

Is there a simple way to do the above? I think there has to be, but I can't seem to find the right hint via Google.

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6 Answers 6

up vote 7 down vote accepted

The dict subclass defaultdict in the collections module can be used to automatically initialize a new list for each key the first time you access it.

With it, you just need to loop through the input pairs and append each value to the list of the corresponding key in order to produce the lists of values you want.

import collections    

data = [('a', 3), ('b', 5), ('a', 7), ('c', 15), ('d', 12)]
result = collections.defaultdict(list)

for key, value in data:
    result[key].append(value)

print result
defaultdict(<type 'list'>, {'a': [3, 7], 'c': [15], 'b': [5], 'd': [12]})
print result['a']
[3, 7]
print result['z']
[]
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Cool. I didn't know about defaultdict until today. Another wrench in my python toolbox! –  quanticle Mar 23 '12 at 14:24

You can use the setdefault() method of dictionaries:

d = {}
for key, value in my_list:
    d.setdefault(key, []).append(value)

This can also be done with a defaultdict. Which of the two options is preferable depends on how d is used in the rest of the code. A defaultdict will never give you a KeyError, so it might hide errors further down in the code.

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+1 for setdefault() - that's a new one for me. –  Burhan Khalid Mar 23 '12 at 15:04
def multidict(lst):
    result = collections.defaultdict(list)
    for key, value in lst:
        result[key].append(value)
    return result # or dict(result) if you don't want to keep defaultdict
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from collections import defaultdict
l = [('a', 3), ('b', 5), ('a', 7), ('c', 15), ('d', 12)]
d = defaultdict(list)
for k, v in l:
    d[k].append(v)
print d

See the first example here: http://docs.python.org/release/2.5.2/lib/defaultdict-examples.html

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Both werkzeug and paste offer multidict implementations. Pick one, and use it.

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like this?

 >>> d=[('a', 3), ('b', 5), ('a', 7), ('c', 15), ('d', 12)]
 >>> f={}
 >>> for k,v in d:
 ...     f[k]=f.get(k,[])+[v]
 ... 
 >>> f
 {'a': [3, 7], 'c': [15], 'b': [5], 'd': [12]}
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f.setdefault(k,[]).append(v) would be more straightforward than f[k]=f.get(k,[])+[v] –  Steven Rumbalski Mar 23 '12 at 14:30
    
agreed, they are almost equivalent though. –  luke14free Mar 23 '12 at 14:35
    
@StevenRumbalski: The main advantage of using setdefault() is that it does not make the code O(n^2). –  Sven Marnach Mar 23 '12 at 14:36
    
@user999346: No, they are not equivalent. The setdefault() way reuses the list onces it was created, while your approach copies all items to a new list each time an item is appended. –  Sven Marnach Mar 23 '12 at 14:37
    
@user999346: Addition of list to list creates a new list which is then assigned back to the dictionary. This will become quite inefficient as the number of values stored in the list grows. –  Steven Rumbalski Mar 23 '12 at 14:38

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