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file:///home/ashu/Music/Collections/randomPicks/ipod%20on%20sep%2009/Coldplay-Sparks.mp3

how can i convert a string like the above to get the the normal file path which i can pass to

open() function .
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up vote 12 down vote accepted

Have a look at url2pathname:

import urllib2

path = urllib2.url2pathname("file:///home/ashu/Music/Collections/randomPicks/ipod%20on%20sep%2009/Coldplay-Sparks.mp3")
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5  
+1 for giving him what he really needs, instead of what he asked for. – Wooble Jan 2 '11 at 6:13

This is called unquote. Avaiable from urllib.

import urllib
urllib.unquote('%20')
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