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How can I remove duplicate rows from a csv file based on two columns, with one of those columns determining a match using a regular expression and grouping by the first field (IPAddress). Finally add a count field to the row to count duplicate rows:

csv file:

IPAddress, Value1, Value2, Value3, Test1ABC, 10, 20, Test2ABC, 20, 30, Test1ABA, 30, 40, Value1BBA, 40, 50, Value1BBA, 40, 50, Test1ABC, 10, 20, Value1AAB, 20, 30, Value2ABA, 30, 40, Value1BBA, 40, 50

I want to match on IPAddress and Value1 (where Value1 is a match if first 5 char are a match).

This would give me:

IPAddress, Value1, Value2, Value3, Count, Test1ABC, 10, 20, 2, Test2ABC, 20, 30, 1
**, Test1ABA, 30, 40** (Line would be removed but counted), Value1BBA, 40, 50, 2
**, Value1BBA, 40, 50** (Line would be removed but counted), Test1ABC, 10, 20, 1, Value1AAB, 20, 30, 2, Value2ABA, 30, 40, 1
**, Value1BBA, 40, 50** (Line would be removed but counted)

New Output:

IPAddress, Value1, Value2, Value3, Count, Test1ABC, 10, 20, 2, Test2ABC, 20, 30, 1, Value1BBA, 40, 50, 2, Test1ABC, 10, 20, 1, Value1AAB, 20, 30, 2, Value2ABA, 30, 40, 1

I have tried using a set but obviously can't index a set.

entries = set()
writer=csv.writer(open('myfilewithoutduplicates.csv', 'w'), delimiter=',')
    for row in list:
    key = (row[0], row[1])
        if re.match(r"(Test1)", key[1]) not in entries:

Pseudo Code ?:

# I want to iterate through rows of a csv file and
if row[0] and row[1][:5] match a previous entry:
    remove row
    add count
    add row

Any help or guidance is really appreciated.

share|improve this question
Note that your Value1AAB, etc. lines appear to be matched on the first 6 characters. Can you elaborate on how those lines are matched? What are the rules for the prefixes being equal? –  Martijn Pieters Aug 8 '13 at 12:44
should it perhaps be compared against all but the last 3 characters perhaps? –  Martijn Pieters Aug 8 '13 at 12:56

2 Answers 2

up vote 0 down vote accepted

You need a dictionary to track the matches. You do not need a regular expression, only the first 5 characters need to be tracked. Store rows by their 'key', comprised of the first column and the first 5 characters of the second, and add a count. You need to count first, then write out the collected rows and counts.

If ordering matters, you can replace the dictionary with collections.OrderedDict() but otherwise the code is the same:

rows = {}

with open(inputfilename, 'rb') as inputfile:
    reader = csv.reader(inputfile)
    headers = next(reader)  # collect first row as headers for the output
    for row in reader:
        key = (row[0], row[1][:5])
        if key not in rows:
            rows[key] = row + [0,]
        rows[key][-1] += 1  # count

with open('myfilewithoutduplicates.csv', 'wb') as outputfile:
    writer = csv.writer(outputfile)
    writer.writerow(headers + ['Count'])
share|improve this answer
The works great. Thanks Martijn –  patchy Aug 15 '13 at 7:27

You could use numpy:

import numpy as np

# import data from file (assume file called a.csv), store as record array:
a  = np.genfromtxt('a.csv',delimiter=',',skip_header=1,dtype=None)

# get the first column and first 5 chars of 2nd col store in array p
p=[x+y for x,y in zip(a['f0'],[a['f1'][z][0:6] for z in range(len(a))])]

#compare elements in p, get indexes of unique entries (m)
k,m = np.unique(p, return_index=True)

# use indexes to create new array without dupes
newlist = [a[v] for v in m]

#the count is the difference in lengths of the arrays
count = len(a)-len(newlist)
share|improve this answer
Thanks for the help. Never used "numpy" before. I'll take a look now. –  patchy Aug 15 '13 at 7:28

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