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Give these two lists:

I[2]: list1 = ['r1', 'r1', 'r1', 'r2', 'r2', 'r3']

I[3]: list2 = [1,2,3,1,2,1]

What is the Pythonic way to construct the following dictionary?

I[5]: mydict
O[5]: {'r1': {'n1': 1, 'n2': 2, 'n3': 3}, 'r2': {'n1': 1, 'n2': 2}, 'r3': 'n1'}

Thanks.

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2  
I'm having difficulty working out how you get logically from one to the other. Can you explain the rule? –  bluepnume May 15 '11 at 17:23
1  
I think it's whenever there's a different element in list1, there starts a new key : dictionary. In the dictionary you have it map to the index of the list2, like 'n'+str(list2[index]) : list2[index] –  Pwnna May 15 '11 at 17:26
    
This is a single operation where I use reading a dataset in a logical way. R is a flight number, n is the flight leg I am interested from within the dataset. Eventually my data dictionary will have a form similar to mydict['r1']['n1'] = data_instance() –  Gökhan Sever May 15 '11 at 17:42

4 Answers 4

up vote 4 down vote accepted
l1 = ['r1', 'r1', 'r1', 'r2', 'r2', 'r3']
l2 = [1, 2, 3, 1, 2, 1]

d = {}
for i, j in zip(l1, l2):
  d[i] = d.get(i, {})
  d[i]['n%s' % j] = j

Alternatively:

l1 = ['r1', 'r1', 'r1', 'r2', 'r2', 'r3']
l2 = [1, 2, 3, 1, 2, 1]

d = dict((i, {}) for i in set(l1))
for i, j in zip(l1, l2):
  d[i]['n%s' % j] = j
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My only question is, why bother converting l1 into a set? A dict already has unique keys, so there is no point (or is there??). –  zeekay May 15 '11 at 17:51
    
Sure, it means you only create 3 new dicts rather than 6 (3 of which are thrown away when you overwrite the unique keys) –  bluepnume May 15 '11 at 17:53
    
Yeah that's a good point. I thought of using set for that reason, but it seemed irrelevant with the limited number of keys. I wonder how much of an impact it'd be on a larger set of dicts. –  zeekay May 15 '11 at 17:57
    
Using OrderedDict instead of a regular dictionary (just to keep things in order since I have about 45 items in each lists) I include your code in my script. –  Gökhan Sever May 15 '11 at 18:18

Not exactly too pythonic, someone could improve on this:

l1 = ["r1", "r1", "r1", "r2", "r2", "r3"]
l2 = [1,2,3,1,2,1]

d = {}
for i in xrange(len(l1)):
    v = d.get(l1[i], {})
    v["n" + str(l2[i])] = l2[i]
    d[l1[i]] = v
print d
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I would go about it in two steps, first create your dict of dicts, each k is an element from list1 with associated empty dict.

d = dict((k, {}) for k in list1)

Iterate over list1 using enumerate to get the index of the item in list2, and update proper dictionary.

for i, k in enumerate(list1):
    d[k]['n%d' % list2[i]] = list2[i]

Or better using zip to get key and proper value at the same time (as in bluepnume's answer):

for k, v in zip(list1, list2):
    d[k]['n%d' % v] = v
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That's a strange way to update a dictionary value. dict.update({x:y}) -> d[x] = y –  bluepnume May 15 '11 at 17:44
    
Yeah generally not used for a single value. Dunno why I did that, just the first thing that popped into my head this morning, update is really useful when you have another dict to update the first with. And you already show the other way in your example, so I didn't feel like changing it...but maybe I should :D –  zeekay May 15 '11 at 17:47
    
Although using zip is more pythonic than using enumerate, so I tend to favor your solution. –  zeekay May 15 '11 at 17:49

Using defaultdict:

from collections import defaultdict

list1 = ['r1', 'r1', 'r1', 'r2', 'r2', 'r3']
list2 = [1,2,3,1,2,1]
mydict = defaultdict(dict)
for a, b in zip(list1, list2):
    mydict[a]['n%s' %b] = b
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