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I am looking for a way to extract a filename and extension from a particular url using Python

lets say a URL looks as follows

picture_page = "http://distilleryimage2.instagram.com/da4ca3509a7b11e19e4a12313813ffc0_7.jpg"

How would I go about getting the following.

filename = "da4ca3509a7b11e19e4a12313813ffc0_7"
file_ext = ".jpg"
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5 Answers 5

from urlparse import urlparse
from os.path import splitext, basename

picture_page = "http://distilleryimage2.instagram.com/da4ca3509a7b11e19e4a12313813ffc0_7.jpg"
disassembled = urlparse(picture_page)
filename, file_ext = splitext(basename(disassembled.path))

Only downside with this is that your filename will contain a preceding / which you can always remove yourself.

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+1 for using built-ins. –  Burhan Khalid May 11 '12 at 13:33
1  
the preceding '/' is not the only problem, if the url contains other subdirectories, they will be kept in the filename, maybe OP wants them, maybe not ;) –  Cédric Julien May 11 '12 at 13:38
    
@Cédric Julien - Thanks for the reminder about .basename to get just the last portion, edited the post to reflect so. :) –  Christian Witts May 11 '12 at 13:47

Try with urlparse.urlsplit to split url, and then os.path.splitext to retrieve filename and extension (use os.path.basename to keep only the last filename) :

import urlparse
import os.path

picture_page = "http://distilleryimage2.instagram.com/da4ca3509a7b11e19e4a12313813ffc0_7.jpg"

print os.path.splitext(os.path.basename(urlparse.urlsplit(picture_page).path))

>>> ('da4ca3509a7b11e19e4a12313813ffc0_7', '.jpg')
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filename = picture_page.split('/')[-1].split('.')[0]
file_ext = '.'+picture_page.split('.')[-1]
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THank you! It can be usefull if no reasons to import extra libraries –  Roman Podlinov May 22 '13 at 13:58

os.path.splitext will help you extract the filename and extension once you have extracted the relevant string from the URL using urlparse:

   fName, ext = os.path.splitext('yourImage.jpg')
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>>> import re
>>> s = 'picture_page = "http://distilleryimage2.instagram.com/da4ca3509a7b11e19e4a12313813ffc0_7.jpg"'
>>> re.findall(r'\/([a-zA-Z0-9_]*)\.[a-zA-Z]*\"$',s)[0]
'da4ca3509a7b11e19e4a12313813ffc0_7'
>>> re.findall(r'([a-zA-Z]*)\"$',s)[0]
'jpg'
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re is not necessary here. –  Burhan Khalid May 11 '12 at 13:32

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