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Hey I'm trying to figure out a regular expression to do the following.

Here is my string

Place,08/09/2010,"15,531","2,909",650

I need to split this string by the comma's. Though due to the comma's used in the numerical data fields the split doesn't work correctly. So I want to remove the comma's in the numbers before running splitting the string.

Thanks.

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If none of the answers are fitting enough, could you point out what you're missing still? –  Morten Kristensen Nov 17 '11 at 19:35
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6 Answers 6

up vote 22 down vote accepted
new_string = re.sub(r'"(\d+),(\d+)"', r'\1.\2', original_string)

This will substitute the , inside the quotes with a . and you can now just use the strings split method.

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1  
...unless the number is "123,456,789" - then it will be "123.456,789" –  Code Jockey Nov 17 '11 at 19:32
    
good point, I considered only the case where the , was the radix point in a valid number. –  spowers Nov 17 '11 at 19:35
    
Thank, yours is the correct solution I was looking for. Cheers! –  Ciarán Nov 17 '11 at 19:37
    
I want to convert the numbers to actual integers anyway so. I want to just remove the comma completely. So instead of r'\1.\2' it would be r'\1\2' –  Ciarán Nov 17 '11 at 19:38
2  
@Ciarán Careful to not have any number greater than 999,999 inside the quotes... –  Code Jockey Nov 17 '11 at 19:44
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>>> from StringIO import StringIO
>>> import csv
>>> r = csv.reader(StringIO('Place,08/09/2010,"15,531","2,909",650'))
>>> r.next()
['Place', '08/09/2010', '15,531', '2,909', '650']
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Ah I see there is a csv reader. Cheers thanks! –  Ciarán Nov 17 '11 at 19:18
    
Though actually I now get this error Traceback (most recent call last): , line 19, in <module> from StringIO import StringIO ImportError: No module named StringIO –  Ciarán Nov 17 '11 at 19:20
2  
In Python 3 it's io.StringIO: docs.python.org/py3k/library/… –  Acorn Nov 17 '11 at 20:23
    
This is better than the accepted answer. –  dss539 Jan 28 at 14:19
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Another way of doing it using regex directly:

>>> import re
>>> data = "Place,08/09/2010,\"15,531\",\"2,909\",650"
>>> res = re.findall(r"(\w+),(\d{2}/\d{2}/\d{4}),\"([\d,]+)\",\"([\d,]+)\",(\d+)", data)
>>> res
[('Place', '08/09/2010', '15,531', '2,909', '650')]
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You could parse a string of that format using pyparsing:

import pyparsing as pp
import datetime as dt

st='Place,08/09/2010,"15,531","2,909",650'

def line_grammar():
    integer=pp.Word(pp.nums).setParseAction(lambda s,l,t: [int(t[0])])
    sep=pp.Suppress('/')
    date=(integer+sep+integer+sep+integer).setParseAction(
              lambda s,l,t: dt.date(t[2],t[1],t[0]))
    comma=pp.Suppress(',')
    quoted=pp.Regex(r'("|\').*?\1').setParseAction(
              lambda s,l,t: [int(e) for e in t[0].strip('\'"').split(',')])
    line=pp.Word(pp.alphas)+comma+date+comma+quoted+comma+quoted+comma+integer
    return line

line=line_grammar()
print(line.parseString(st))
# ['Place', datetime.date(2010, 9, 8), 15, 531, 2, 909, 650]

The advantage is you parse, convert, and validate in a few lines. Note that the ints are all converted to ints and the date to a datetime structure.

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a = """Place,08/09/2010,"15,531","2,909",650""".split(',')
result = []
i=0
while i<len(a):
    if not "\"" in a[i]:
        result.append(a[i])
    else:
        string = a[i]
        i+=1
        while True:
            string += ","+a[i]
            if "\"" in a[i]:
                break
            i+=1
        result.append(string)
    i+=1
print result

Result:
['Place', '08/09/2010', '"15,531"', '"2,909"', '650']
Not a big fan of regular expressions unless you absolutely need them

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If you need a regex solution, this should do:

r"(\d+),(?=\d\d\d)"

then replace with:

"\1"

It will replace any comma-delimited numbers anywhere in your string with their number-only equivalent, thus turning this:

Place,08/09/2010,"15,531","548,122,909",650

into this:

Place,08/09/2010,"15531","548122909",650

I'm sure there are a few holes to be found and places you don't want this done, and that's why you should use a parser!

Good luck!

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Does the downvoter dare to tell me why my solution doesn't answer the question? –  Code Jockey Nov 17 '11 at 19:26
1  
I guess not...... –  Code Jockey Nov 17 '11 at 19:33
    
The question is very unclear, but I think it was really asking how to ignore commas in double quotes (that is, how to parse a line of a csv file) and the example given was just one example of something that got parsed wrong by naive comma-splitting. The regexp fails on cases like '1000,1234' as well as ignoring double quotes. The downvoter wasn't me though, so consider this just my guess as to his or her motivation. The poster who suggested using the csv module clearly gave the right answer I think. –  user97370 Nov 27 '11 at 14:04
    
@Paul - thanks for your input! always welcome! –  Code Jockey Dec 5 '11 at 19:41
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