Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

From this list of tuples:

[('IND', 'MIA', '05/30'), ('ND', '07/30'), ('UNA', 'ONA', '100'), \
('LAA', 'SUN', '05/30'), ('AA', 'SN', '07/29'), ('UAA', 'AAN')] 

I want to create a dictionary, which keys will be [0] and [1] value of every third tuple. Thus, the first key of dict created should be 'IND, MIA', second key 'LAA, SUN'

The final result should be:

{'IND, MIA': [('IND', 'MIA', '05/30'), ('ND', '07/30'), ('UNA', 'ONA', '100')],\
'LAA, SUN': [('LAA', 'SUN', '05/30'), ('AA', 'SN', '07/29'), ('UAA', 'AAN')]}

If this is of any relevance, once the values in question becomes keys, they may be removed from tuple, since then I do not need them anymore. Any suggestions greatly appreciated!

share|improve this question
Why not use tuples as keys instead of strings? ('IND','MIA') instead of 'IND, MIA' for example. Seems more elegant, and allows for commas inside of your keys without obfuscating the keys. – Eli May 31 '13 at 20:27
what do you want to happen if the number of items is not evenly divisible by 3 (compare @J0HN's answer that has no padding and Martijn's one with izip_longest())? – J.F. Sebastian May 31 '13 at 20:36

3 Answers 3

up vote 4 down vote accepted
inp = [('IND', 'MIA', '05/30'), ('ND', '07/30'), ('UNA', 'ONA', '100'), \
       ('LAA', 'SUN', '05/30'), ('AA', 'SN', '07/29'), ('UAA', 'AAN')]

result = {}
for i in range(0, len(inp), 3):
    item = inp[i]
    result[item[0]+","+item[1]] = inp[i:i+3]

print (result)

Dict comprehension solution is possible, but somewhat messy.

To remove keys from array replace second loop line (result[item[0]+ ...) with

result[item[0]+","+item[1]] = [item[2:]]+inp[i+1:i+3]

Dict comprehension solution (a bit less messy than I initially thought :))

rslt = {
    inp[i][0]+", "+inp[i][1]: inp[i:i+3]
    for i in range(0, len(inp), 3)

And to add more kosher stuff into the answer, here's some useful links :): defaultdict, dict comprehensions

share|improve this answer
you don't need defaultdict here, an ordinary dict will do. – J.F. Sebastian May 31 '13 at 20:29
Thanks you! I pick the dict comprehension solution for most concise way. – nutship May 31 '13 at 20:30
@J.F.Sebastian yes, you're right, leftover of first version that used list append to collect those elements. Thank you. – J0HN May 31 '13 at 20:31

Using the itertools grouper recipe:

from itertools import izip_longest

def grouper(iterable, n, fillvalue=None):
    "Collect data into fixed-length chunks or blocks"
    # grouper('ABCDEFG', 3, 'x') --> ABC DEF Gxx
    args = [iter(iterable)] * n
    return izip_longest(fillvalue=fillvalue, *args)

{', '.join(g[0][:2]): g for g in grouper(inputlist, 3)}

should do it.

The grouper() method gives us groups of 3 tuples at a time.

Removing the key values from the dictionary values too:

{', '.join(g[0][:2]): (g[0][2:],) + g[1:]  for g in grouper(inputlist, 3)}

Demo on your input:

>>> from pprint import pprint
>>> pprint({', '.join(g[0][:2]): g for g in grouper(inputlist, 3)})
{'IND, MIA': (('IND', 'MIA', '05/30'), ('ND', '07/30'), ('UNA', 'ONA', '100')),
 'LAA, SUN': (('LAA', 'SUN', '05/30'), ('AA', 'SN', '07/29'), ('UAA', 'AAN'))}
>>> pprint({', '.join(g[0][:2]): (g[0][2:],) + g[1:]  for g in grouper(inputlist, 3)})
{'IND, MIA': (('05/30',), ('ND', '07/30'), ('UNA', 'ONA', '100')),
 'LAA, SUN': (('05/30',), ('AA', 'SN', '07/29'), ('UAA', 'AAN'))}
share|improve this answer
As always much obliged! I wish I could use accept button twice here. THX. – nutship May 31 '13 at 20:31
from collections import defaultdict
def solve(lis, skip = 0):
    dic = defaultdict(list)
    it = iter(lis)                    # create an iterator
    for elem in it:
        key = ", ".join(elem[:2])     # create key
        for elem in xrange(skip):     # append the next two items to the 
            dic[key].append(next(it)) # dic as skip =2 
    print dic

solve([('IND', 'MIA', '05/30'), ('ND', '07/30'), ('UNA', 'ONA', '100'), \
('LAA', 'SUN', '05/30'), ('AA', 'SN', '07/29'), ('UAA', 'AAN')], skip = 2)


defaultdict(<type 'list'>,
 {'LAA, SUN': [('LAA', 'SUN', '05/30'), ('AA', 'SN', '07/29'), ('UAA', 'AAN')],
 'IND, MIA': [('IND', 'MIA', '05/30'), ('ND', '07/30'), ('UNA', 'ONA', '100')]
share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.