Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

The challenge is that I want to count the number of times a certain pattern of items occurs in a sub-list at certain indices.

For example, I'd like to count the number of times a unique patter occurs at index 0 and index 1. 'a' and 'z' occur three times below at index 0 and index 1 while '1' and '2' occur two times below at index 0 and index 1. I'm only concerned at the pair that occurs at index 0 and 1 and I'd like to know the count of unique pairs that are there and then append that count back to the sub-list.

List = [['a','z','g','g','g'],['a','z','d','d','d'],['a','z','z','z','d'],['1','2','f','f','f'],['1','2','3','f','f'],['1','1','g','g','g']]

Desired_List = [['a','z','g','g','g',3],['a','z','d','d','d',3],['a','z','z','z','d',3],['1','2','f','f','f',2],['1','2','3','f','f',2],['1','1','g','g','g',1]]

Currently, my attempt is this:

from collections import Counter
l1 = Counter(map(lambda x: (x[0] + "|" + x[1]),List)

Deduped_Original_List = map(lambda x: Counter.keys().split("|"),l1)
Counts = map(lambda x: Counter.values(),l1)

for ele_a, ele_b in zip(Deduped_Original_List, Counts):
    ele_a.append(ele_b)

This clearly doesn't work because in the process I lose index 2,3, and 4.

share|improve this question
    
Post the code you've come up with so far. –  Paul Griffiths Jan 27 '14 at 4:50

3 Answers 3

up vote 4 down vote accepted

You can use list comprehension with collections.Counter:

from collections import Counter
lst = [['a','z','g','g','g'],['a','z','d','d','d'],['a','z','z','z','d'],['1','2','f','f','f'],['1','2','3','f','f'],['1','1','g','g','g']]
cnt = Counter([tuple(l[:2]) for l in lst])
lst_output = [l + [cnt[tuple(l[:2])]] for l in lst]
print lst_output

Ouput:

[['a', 'z', 'g', 'g', 'g', 3], ['a', 'z', 'd', 'd', 'd', 3], ['a', 'z', 'z', 'z', 'd', 3], ['1', '2', 'f', 'f', 'f', 2], ['1', '2', '3', 'f', 'f', 2], ['1', '1', 'g', 'g', 'g', 1]]
share|improve this answer
>>> import collections
>>> List = [['a','z','g','g','g'],['a','z','d','d','d'],['a','z','z','z','d'],['1','2','f','f','f'],['1','2','3','f','f'],['1','1','g','g','g']]
>>> patterns = ['az', '12']
>>> answer = collections.defaultdict(int)
>>> for subl in List:
...     for pattern in patterns:
...         if all(a==b for a,b in zip(subl, pattern)):
...             answer[pattern] += 1
...             break
... 
>>> for i,subl in enumerate(List):
...     if ''.join(subl[:2]) in answer:
...         List[i].append(answer[''.join(subl[:2])])
... 
>>> List
[['a', 'z', 'g', 'g', 'g', 3], ['a', 'z', 'd', 'd', 'd', 3], ['a', 'z', 'z', 'z', 'd', 3], ['1', '2', 'f', 'f', 'f', 2], ['1', '2', '3', 'f', 'f', 2], ['1', '1', 'g', 'g', 'g']]
>>> 
share|improve this answer

I like the Counter approach of YS-L. Here is another approach:

>>> List = [['a','z','g','g','g'], ['a','z','d','d','d'], ['a','z','z','z','d'],['1','2','f','f','f'], ['1','2','3','f','f'], ['1','1','g','g','g']]
>>> d = {}
>>> for i in List:
       key = i[0] + i[1]
       if not d.get(key, None): d[key] = 1
       else: d[key] += 1


>>> Desired_List = [li + [d[li[0] + li[1]]] for li in List]
>>> Desired_List
[['a', 'z', 'g', 'g', 'g', 3], ['a', 'z', 'd', 'd', 'd', 3], ['a', 'z', 'z', 'z', 'd', 3], ['1', '2', 'f', 'f', 'f', 2], ['1', '2', '3', 'f', 'f', 2], ['1', '1', 'g', 'g', 'g', 1]]
share|improve this answer

Your Answer

 
discard

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.