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Does python have a command similar to the linux command:

cat file.txt | sort -n | uniq -c

Where it sorts and calculates the frequency of a text file with integers on every new line, and will output in the form:

76539  1 
100441 2 
108637 3 
108874 4 
103580 5 
 91869 6 
 78458 7 
 61955 8 
 46100 9 
 32701 10 
 21111 11 
 13577 12 
  7747 13 
  4455 14 
  2309 15 
  1192 16 
   554 17 
   264 18 
   134 19 
    63 20 
    28 21 
    15 22 
    12 23 
     7 24 
     5 25

If not, can I just simply os.system(cat file.txt | sort -n | uniq -c) ?

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collections.Counter() - it is not exactly uniq -c but very handy. –  furas Jun 24 at 17:43

3 Answers 3

up vote 1 down vote accepted
import collections

c = collections.Counter()

with open('file.txt') as f:
    for text in f:
        c.update( [int(text.strip())] )

c_sorted = sorted(c.most_common())

for key, val in c_sorted:
    print val, key
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This only seems to output only the numbers 0 - 9 –  Sean Jun 24 at 18:00
    
You didn't add file.txt to test it. Show some input data. –  furas Jun 24 at 18:02
    
I found the problem - I forgot to use [] in update() –  furas Jun 24 at 18:07
    
Perfect! Exactly what I was looking for, thanks. –  Sean Jun 24 at 18:17

Try collections.Counter

>>> import collections
>>> collections.Counter(['asdf', 'sdfg', 'asdf', 'qwer', 'sdfg', 'asdf'])
Counter({'asdf': 3, 'sdfg': 2, 'qwer': 1})
>>> collections.Counter(map(str.strip, open('file.txt').readlines()))
Counter({'spam': 5, 'hello': 3, 'world': 2, 'eggs': 2})
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You can use itertools.groupby

from itertools import groupby

words = ['blah', 'blah2']
my_result = dict((key, len(list(word_group))) for key, word_group in groupby(sorted(words)))
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