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.

Started learning python this week, so I thought I would use it rather than excel to parse some fields out of file paths.

I have about 3000 files that all fit the naming convention. /Household/LastName.FirstName.Account.Doctype.Date.extension

For example one of these files might be named: Cosby.Bill..Profile.2006.doc and the fullpath is /Volumes/HD/Organized Files/Cosby, Bill/Cosby.Bill..Profile.2006.doc

In this case:

Cosby, Bill would be the Household

Where the household (Cosby, Bill) is the enclosing folder for the actual file

Bill would be the first name

Cosby would be the last name

The Account field is ommitted

Profile is the doctype

2006 is the date

doc is the extension

All of these files are located at this directory /Volumes/HD/Organized Files/ I used terminal and ls to get the list of all the files into a .txt file on my desktop and I am trying to parse the information from the filepaths into categories like in the sample above. Ideally I would like to output to a csv, with a column for each category. Here is my ugly code:

def main():
    file = open('~/Desktop/client_docs.csv', "rb")
    output = open('~/Desktop/client_docs_parsed.txt', "wb")
    for line in file:
        i = line.find(find_nth(line, '/', 2))
        beghouse = line[i + len(find_nth(line, '/', 2)):]
        endhouse = beghouse.find('/')
        household = beghouse[:endhouse]
        lastn = (line[line.find(household):])[(line[line.find(household):]).find('/') + 1:(line[line.find(household):]).find('.')]
        firstn = line[line.find('.') + 1: line.find('.', line.find('.') + 1)]
        acct = line[line.find('{}.{}.'.format(lastn,firstn)) + len('{}.{}.'.format(lastn,firstn)):line.find('.',line.find('{}.{}.'.format(lastn,firstn)) + len('{}.{}.'.format(lastn,firstn)))]
        doctype_beg = line[line.find('{}.{}.{}.'.format(lastn, firstn, acct)) + len('{}.{}.{}.'.format(lastn, firstn, acct)):]
        doctype = doctype_beg[:doctype_beg.find('.')]
        date_beg = line[line.find('{}/{}.{}.{}.{}.'.format(household,lastn,firstn,acct,doctype)) + len('{}/{}.{}.{}.{}.'.format(household,lastn,firstn,acct,doctype)):]
        date = date_beg[:date_beg.find('.')]
        print '"',household, '"','"',lastn, '"','"',firstn, '"','"',acct, '"','"',doctype, '"','"',date,'"'

def find_nth(body, s_term, n):
    start = body[::-1].find(s_term)
    while start >= 0 and n > 1:
        start = body[::-1].find(s_term, start+len(s_term))
        n -= 1
    return ((body[::-1])[start:])[::-1]

if __name__ == "__main__": main()

It seems to work ok, but I run into problems when there is another enclosing folder, it then shifts all my fields about.. for example when rather than the file residing at

/Volumes/HD/Organized Files/Cosby, Bill/

its at /Volumes/HD/Organized Files/Resigned/Cosby, Bill/

I know there has got to be a less clunky way to go about this.

share|improve this question
    
Hello. I smell here the scent of an XY problem (meta.stackexchange.com/questions/66377/what-is-the-xy-problem) What is your aim ? Getting the right tools to reach your aim is your real (X) problem. Asking this question is the way you try to reach what is your supposed solution (Y) –  eyquem Mar 5 '13 at 19:56
    
You can use os.path.basename() to get the base name of a path. Then use str.split() to split the name by periods. –  William Mar 5 '13 at 19:58
    
Brandon, I posted an edit yesterday evening. I've also posted a second edit just now. Any news from your side ? –  eyquem Mar 7 '13 at 18:43
    
Just commented on my findings –  Brandon Ogle Mar 12 '13 at 15:46

3 Answers 3

up vote 1 down vote accepted

Here's a tool more practical than your function find_nth() :
rstrip()

def find_nth(body, s_term, n):
    start = body[::-1].find(s_term)
    print '------------------------------------------------'
    print 'body[::-1]\n',body[::-1]
    print '\nstart == %s' % start
    while start >= 0 and n > 1:
        start = body[::-1].find(s_term, start+len(s_term))
        print 'n == %s    start == %s' % (n,start)
        n -= 1
    print '\n (body[::-1])[start:]\n',(body[::-1])[start:]
    print '\n((body[::-1])[start:])[::-1]\n',((body[::-1])[start:])[::-1]
    print '---------------\n'
    return ((body[::-1])[start:])[::-1]


def cool_find_nth(body, s_term, n):
    assert(len(s_term)==1)
    return body.rsplit(s_term,n)[0] + s_term


ss = 'One / Two / Three / Four / Five / Six / End'
print 'the string\n%s\n' % ss

print ('================================\n'
       "find_nth(ss, '/', 3)\n%s" % find_nth(ss, '/', 3) )

print '================================='
print "cool_find_nth(ss, '/', 3)\n%s" % cool_find_nth(ss, '/', 3)

result

the string
One / Two / Three / Four / Five / Six / End

------------------------------------------------
body[::-1]
dnE / xiS / eviF / ruoF / eerhT / owT / enO

start == 4
n == 3    start == 10
n == 2    start == 17

 (body[::-1])[start:]
/ ruoF / eerhT / owT / enO

((body[::-1])[start:])[::-1]
One / Two / Three / Four /
---------------

================================
find_nth(ss, '/', 3)
One / Two / Three / Four /
=================================
cool_find_nth(ss, '/', 3)
One / Two / Three / Four /

EDIT 1

Here's another very practical tool : regex

import re

reg = re.compile('/'
                 '([^/.]*?)/'
                 '([^/.]*?)\.'
                 '([^/.]*?)\.'
                 '([^/.]*?)\.'
                 '([^/.]*?)\.'
                 '([^/.]*?)\.'
                 '[^/.]+\Z')

def main():
    #file = open('~/Desktop/client_docs.csv', "rb")
    #output = open('~/Desktop/client_docs_parsed.txt', "wb")
    li = ['/Household/LastName.FirstName.Account.Doctype.Date.extension',
          '- /Volumes/HD/Organized Files/Cosby, Bill/Cosby.Bill..Profile.2006.doc']
    for line in li:
        print "line == %r" % line
        household,lastn,firstn,acct,doctype,date = reg.search(line).groups('')       
        print ('household == %r\n'
               'lastn     == %r\n'
               'firstn    == %r\n'
               'acct      == %r\n'
               'doctype   == %r\n'
               'date      == %r\n'
               % (household,lastn,firstn,acct,doctype,date))

if __name__ == "__main__": main() 

result

line == '/Household/LastName.FirstName.Account.Doctype.Date.extension'
household == 'Household'
lastn     == 'LastName'
firstn    == 'FirstName'
acct      == 'Account'
doctype   == 'Doctype'
date      == 'Date'

line == '- /Volumes/HD/Organized Files/Cosby, Bill/Cosby.Bill..Profile.2006.doc'
household == 'Cosby, Bill'
lastn     == 'Cosby'
firstn    == 'Bill'
acct      == ''
doctype   == 'Profile'
date      == '2006'

EDIT 2

I wonder where was my brain when I posted my last edit. The following does the job as well:

rig = re.compile('[/.]')
rig.split(line)[-7:-1] 
share|improve this answer
    
The regex solution is along the lines of what I am looking for. However I run into an error when I try to iterate though my file. It seems to not find the pattern and groups() is getting NoneType. Here is an example of some of the files in the txt: –  Brandon Ogle Mar 6 '13 at 20:44
    
hello, where is the example , please ? –  eyquem Mar 6 '13 at 20:50
    
- /Volumes/HD/Organized Files/Cosby, Bill/Cosby.Bill..Profile.2006.doc –  Brandon Ogle Mar 6 '13 at 20:51
    
Is - /Volumes/HD/Organized Files/Cosby, Bill/Cosby.Bill..Profile.2006.doc only one filename ? There are two dots in it –  eyquem Mar 6 '13 at 20:57
    
You had written in your question : "files all in the format of: /Household/LastName.FirstName.Account.Doctype.Date.extension" I thought that it was the reason why you used identifiers houshold, firstn, lastn etc . But if the format is variable, you must precise what you want to catch in the filenames and then do with the catched portions –  eyquem Mar 6 '13 at 21:03

From what I can gather, I believe this will work as a solution, which won't rely on a previously compiled list of files

import csv
import os, os.path

# Replace this with the directory where the household directories are stored.
directory = "home"
output = open("Output.csv", "wb")
csvf = csv.writer(output)

headerRow = ["Household", "Lastname", "Firstname", "Account", "Doctype", 
              "Date", "Extension"]

csvf.writerow(headerRow)

for root, households, files in os.walk(directory):
    for household in households:
        for filename in os.listdir(os.path.join(directory, household)):
            # This will create a record for each filename within the "household"
            # Then will split the filename out, using the "." as a delimiter
            # to get the detail
            csvf.writerow([household] + filename.split("."))
output.flush()
output.close()

This uses the os library to "walk" the list of households. Then for each "household", it will gather a file listing. It this takes this list, to generate records in a csv file, breaking apart the name of the file, using the period as a delimiter.

It makes use of the csv library to generate the output, which will look somewhat like;

"Household,LastName,Firstname,Account,Doctype,Date,Extension"

If the extension is not needed, then it can be ommited by changing the line:

csvf.writerow([household] + filename.split("."))

to

csvf.writerow([household] + filename.split(".")[-1])

which tells it to only use up until the last part of the filename, then remove the "Extension" string from headerRow.

Hopefully this helps

share|improve this answer

It's a bit unclear what the question is but meanwhile, here is something to get you started:

#!/usr/bin/env python

import os
import csv

with open("f1", "rb") as fin:
    reader = csv.reader(fin, delimiter='.')
    for row in reader:
        # split path
        row = list(os.path.split(row[0])) + row[1:]
        print ','.join(row)

Output:

/Household,LastName,FirstName,Account,Doctype,Date,extension

Another interpretation is that you would like to store each field in a parameter and that an additional path screws things up...

This is what row looks like in the for-loop:

['/Household/LastName', 'FirstName', 'Account', 'Doctype', 'Date', 'extension']

The solution then might be to work backwards.

Assign row[-1] to extension, row[-2] to date and so on.

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.