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I imagine this is an easy one for a decent Python dev - Im still learning! Given a csv with duplicate emails I would like to iterate and write out the count of duplicate emails eg:

infile.csv

COLUMN 0
some@email.com
some@email.com
another@address.com
example@email.com

outfile.csv

COLUMN 0                 COLUMN 1
some@email.com           2
another@address.com      1
example@email.com        1

So far I can remove duplicates with

import csv

f = csv.reader(open('infile.csv','rb'))
writer = csv.writer(open('outfile.csv','wb'))
emails = set()


for row in f:
    if row[0] not in emails:
        writer.writerow(row)
        emails.add( row[0] )

but I am having trouble writing the count to a new column.

share|improve this question
up vote 3 down vote accepted

Using defaultdict which is in Python2.6

from collections import defaultdict

# count all the emails before we write anything out
emails = defaultdict(int)
for row in f:
    emails[row[0]] += 1

# now write the file
for row in email.items():
    writer.writerow(row)
share|improve this answer
    
Nice - and I feel like I learnt something! – rebelbass Aug 28 '12 at 4:17
    
Yes -- this is the better answer for an OLDER Python. +1 – dawg Aug 28 '12 at 16:40

Try a counter. It is designed for such use:

from collections import Counter

emails=Counter()
for row in f:
    emails+=Counter([row[0]])

Prints:

Counter({'some@email.com': 2, 'another@address.com': 1, 'example@email.com': 1, 'COLUMN 0': 1})

It is easy to get any other data structure from a counter:

print set(emails.elements())
# set(['another@address.com', 'COLUMN 0', 'example@email.com', 'some@email.com']) 

Note that I did not skip the header or write out the csv -- it is easy to do.

share|improve this answer
    
Make sure to note that Counter is only available on python 2.7+ – jdi Aug 28 '12 at 1:29
    
Unfortunately I'm using 2.6! – rebelbass Aug 28 '12 at 1:39
1  
Very easy to back port to 2.6 – dawg Aug 28 '12 at 1:42
1  
@rebelbass -- if you're using 2.6, you can also pretty easily use a defaultdict for this. (d = collections.defaultdict(int) and d[key] += 1 ...) – mgilson Aug 28 '12 at 2:07

For Python 2.6 you could try something like a pigeonhole sort: http://en.m.wikipedia.org/wiki/Pigeonhole_sort

It's actually kinda made for this exact kind of problem.

For actual setup, use a dictionary to hold the data and then iterate over it instead of trying to write the info out as you go.

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