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.

I am trying to do three simple steps efficiently in Python.

I have a list of lists (of strings). Let us call it L.

  1. I want to flatten the list of lists to a single list LL. (I know how to do this efficiently)

  2. Construct the set of words with frequency 1 from the list LL of step 1. Let us call this set S. (I also know how to do this efficiently)

  3. Remove all the words from the list of lists L which occur in S.

If you can suggest an efficient way of doing step 3, that will be a great help.

share|improve this question
3  
You don't have a step 3 ;) –  Konstantin Oct 17 '12 at 17:49

4 Answers 4

up vote 1 down vote accepted

use a simple list comprehension for the 3rd step:

>>> from collections import Counter
>>> from itertools import chain
>>> L=[['a','b'],['foo','bar'],['spam','eggs'],['b','c'],['spam','bar']]
>>> S=Counter(chain(*L))
>>> S
Counter({'b': 2, 'bar': 2, 'spam': 2, 'a': 1, 'c': 1, 'eggs': 1, 'foo': 1})

>>> [[y for y in x if S[y]!=1] for x in L]
[['b'], ['bar'], ['spam'], ['b'], ['spam', 'bar']]

if you've a set R:

>>> L=[['a','b'],['foo','bar'],['spam','eggs'],['b','c'],['spam','bar']]
>>> R={'a','foo'}
>>> [[y for y in x if y not in R] for x in L]
[['b'], ['bar'], ['spam', 'eggs'], ['b', 'c'], ['spam', 'bar']]
share|improve this answer
    
Thanks a lot, Ashwini. Another related question is how to go about step 3 if the set S is already given. Please let me know. Best regards, –  learning_spark Oct 17 '12 at 18:52
    
I'll definitely accept the answer. Please let me know how to do that. Also kindly answer the "related question". It will be a great help. Best regards, –  learning_spark Oct 17 '12 at 18:58
    
@Dibyendu where's the related question? –  Ashwini Chaudhary Oct 17 '12 at 19:04
    
Thanks, Ashwini. Suppose I have a given set R (R is already constructed) and I want to remove all the words from the list of lists L which occur in R. How do I do that efficiently? Best regards, –  learning_spark Oct 17 '12 at 19:10
1  
I also edited my answer accordingly! Best regards, –  learning_spark Oct 17 '12 at 19:19
import collections
import operator

LL = reduce(operator.add, L)
counted_L = collections.Counter(LL)
def filter_singles(sublist):
  return [value for value in sublist if counted_L[value] != 1]
no_single_freq_L = [filter_singles(sublist) for sublist in L]
share|improve this answer
1  
it should be Counter(LL) –  Ashwini Chaudhary Oct 17 '12 at 17:51
    
Double check the post. LL is the flatted version. By calling Counter(L) we actually get some kind of equivalent to LL with counts for each value. –  bossylobster Oct 17 '12 at 17:53
    
No you don't , you need to flatten the list first. –  Ashwini Chaudhary Oct 17 '12 at 17:55
    
If L is a list of lists, then Counter(L) won't work anyway; lists aren't hashable. –  DSM Oct 17 '12 at 17:56
    
Oops. I was read that L is a list of strings, my bad. –  bossylobster Oct 17 '12 at 17:57

You already mentioned creating a set in your step 2. The built-in type set can make your step 3 really easy to read and understand.

# if you are already working with sets:
LL - S

# or convert to sets
set(LL) - set(S)

Quick example

>>> all_ten = set(range(0,10))
>>> evens = set(range(0,10,2))
>>> odds = all_ten - evens
>>> odds
set([0, 8, 2, 4, 6,])
share|improve this answer
    
Thanks a lot, Istruble. Another related question is how to go about step 3 if the set S is already given. Please let me know. Best regards, –  learning_spark Oct 17 '12 at 18:54
>>> #Tools Needed
>>> import collections
>>> import itertools
>>> #Just for this example
>>> import keyword
>>> import random
>>> #Now create your example data
>>> L = [random.sample(keyword.kwlist,5) for _ in xrange(5)]
>>> #Flatten the List (Step 1)
>>> LL = itertools.chain(*L)
>>> #Create Word Freq (Step 2)
>>> freq = collections.Counter(LL)
>>> #Remove all words with unit frequency (Step 3)
>>> LL = itertools.takewhile(lambda e:freq[e] > 1,freq)
>>> #Display Your result
>>> list(LL)
['and']
>>> L
[['in', 'del', 'if', 'while', 'print'], ['exec', 'try', 'for', 'if', 'finally'], ['and', 'for', 'if', 'print', 'lambda'], ['as', 'for', 'or', 'return', 'else'], ['and', 'global', 'or', 'while', 'lambda']]
>>> 
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.