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say i have a list of items which some of them are similiar up to a point but then differ by a number after a dot

['abc.1',
 'abc.2',
 'abc.3',
 'abc.7',
 'xyz.1',
 'xyz.3',
 'xyz.11',
 'ghj.1',
 'thj.1']

i want to to produce from this list a new list which collapses multiples but preserves some of their data, namely the numbers suffixes so the above list should produce a new list

[('abc',('1','2','3','7'))
 ('xyz',('1','3','11'))
 ('ghj',('1'))
 ('thj',('1'))]

what I have thought, is the first list can be split by the dot into pairs but then how i group the pairs by the first part without losing the second

I'm sorry if this question is noobish, and thanks in advance

... wow, I didnt expect so many great answers so fast, thanks

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1  
Your initial list is not valid Python code. Should those be strings? –  robert Sep 3 '12 at 18:28
    
yes, those are strings ,i didnt mean it to be code, sorry for the confusion –  FlashDD Sep 3 '12 at 18:41

2 Answers 2

up vote 1 down vote accepted

Map the list with a separator function, use itertools.groupby with a key that takes the first element, and collect the second element into the result.

from itertools import groupby, imap

list1 = ["abc.1", "abc.2", "abc.3", "abc.7", "xyz.1", "xyz.3", "xyz.11", "ghj.1", "thj.1"]

def break_up(s):
    a, b = s.split(".")
    return a, int(b)

def prefix(broken_up): return broken_up[0]
def suffix(broken_up): return broken_up[1]

result = []
for key, sub in groupby(imap(break_up, list1), prefix):
    result.append((key, tuple(imap(suffix, sub))))

print result

Output:

[('abc', (1, 2, 3, 7)), ('xyz', (1, 3, 11)), ('ghj', (1,)), ('thj', (1,))]
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Note that unlike solutions based on defaultdict, this solution allocates no additional storage of the size of the input list. (Except of course the resulting list, but that can be easily avoided by yield-ing the values instead of appending them to a list.) –  user4815162342 Sep 3 '12 at 18:59
    
this is a very interesting solution, i need to learn a bit more about functional programming to fully understand this solution, –  FlashDD Sep 3 '12 at 19:04
    
groupby(sequence, keyfun) takes the sequence and groups it by elements that look the same, according to the keyfun. What you get out of it are consecutive pairs of (key, elements...). This solution uses imap to decompose list elements into constituents - the prefix (first) and the suffix (second). It then tells groupby to group list items by prefix, but to retain all the suffixes. Despite the verbiage, this solution seems closest to the spirit of the original question. –  user4815162342 Sep 3 '12 at 19:16
    
I've now cosmetically edited the code to appear a bit less "functional" (no lambda) and to improve the naming to make it clearer what's going on. –  user4815162342 Sep 3 '12 at 19:20
    
i think i got it now, i need to go over itertools, it seems a very powerfull tool. thank you! –  FlashDD Sep 3 '12 at 19:40
from collections import defaultdict

d = defaultdict(list)

for el in elements:
    key, nr = el.split(".")
    d[key].append(nr)

#revert dict to list
newlist = d.items()
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+1: I think this is a good example of a case where the straightforward iterative solution is significantly better than the alternatives. –  DSM Sep 3 '12 at 18:43
    
this is so elegant, much thanks –  FlashDD Sep 3 '12 at 18:47

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