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How to create a list which contains the number of times an element appears in a number of lists. for example I have these lists:

list1 = ['apples','oranges','grape']
list2 = ['oranges, 'oranges', 'pear']
list3 = ['strawberries','bananas','apples']
list4 = [list1,list2,list3]

I want to count the number of documents that contain each element and put it in a dictionary, so for apples^and oranges I get this:

term['apples'] = 2
term['oranges'] = 2   #not 3
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term['apples'] implies the use of a dict. –  dansalmo Jul 13 '13 at 20:30
what do you need the count to be for 'oranges'? 2 or 3? –  shx2 Jul 13 '13 at 20:39
2...the number of documents :) –  user2578185 Jul 13 '13 at 20:47

3 Answers 3

up vote 0 down vote accepted
>>> [el for lst in [set(L) for L in list4] for el in lst].count('apples')
>>> [el for lst in [set(L) for L in list4] for el in lst].count('oranges')

If you want the final structure as a dictionary, a dict comprehension can be used to create a histogram from the flattened list of sets:

>>> list4sets = [set(L) for L in list4]
>>> list4flat = [el for lst in list4sets for el in lst]
>>> term = {el: list4flat.count(el) for el in list4flat}
>>> term['apples']
>>> term['oranges']
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isn't el a list? how can you use it as a key in the dict? –  shx2 Jul 13 '13 at 20:32
Please explain your answer more than just code. –  Sergio Jul 13 '13 at 21:11
The code I added should be self documenting. –  dansalmo Jul 13 '13 at 21:14

Use collections.Counter

from collections import Counter
terms = Counter( x for lst in list4 for x in lst )
=> Counter({'oranges': 3, 'apples': 2, 'grape': 1, 'bananas': 1, 'pear': 1, 'strawberries': 1})
=> 2

As @Stuart pointed out, you can also use chain.from_iterable, to avoid the awkward-looking double-loop in the generator expression (i.e. the for lst in list4 for x in lst).

EDIT: another cool trick is to take the sum of the Counters (inspired by this famous answer), like:

sum(( Counter(lst) for lst in list4 ), Counter())

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I don't think list4 is ment to be included. –  hetepeperfan Jul 13 '13 at 20:21
thank you, but problem is, I want to get the number of lists that this term appears in, for example if a list has it 5 times it should still count as one count...terms['apple'] gives the number of occurrence of this term in all documents, and not the number of documents that have apple –  user2578185 Jul 13 '13 at 20:45
oranges should be 2. –  dansalmo Jul 13 '13 at 21:17
ah, in that case, use sets instead of lists, to remove duplicates. e.g. list4 = [ set(list1), set(list2), set(list3) ]. With that, the answer is still valid. –  shx2 Jul 13 '13 at 21:25
print (list1 + list2 + list3).count('apples')

or if you have all the lists already compiled in list4, you could use itertools.chain as a quick way to link them:

from itertools import chain
print list(chain.from_iterable(list4)).count('apples')

EDIT: or you can do this without itertools:

print sum(list4, []).count('apples') 

and could easily replicate collections.Counter if for some reason you wanted to...

all_lists = sum(list4, [])
print dict((k, all_lists.count(k)) for k in set(all_lists))
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