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There are a number of questions about how to parse a URL in Python, this question is about the best or most Pythonic way to do it.

In my parsing I need 4 parts: the network location, the first part of the URL, the path and the filename and querystring parts.

http://www.somesite.com/base/first/second/third/fourth/foo.html?abc=123

should parse into:

netloc = 'www.somesite.com'
baseURL = 'base'
path = '/first/second/third/fourth/'
file = 'foo.html?abc=123'

The code below produces the correct result, but is there are better way to do this in Python?

url = "http://www.somesite.com/base/first/second/third/fourth/foo.html?abc=123"

file=  url.rpartition('/')[2]
netloc = urlparse(url)[1]
pathParts = path.split('/')
baseURL = pathParts[1]

partCount = len(pathParts) - 1

path = "/"
for i in range(2, partCount):
    path += pathParts[i] + "/"


print 'baseURL= ' + baseURL
print 'path= ' + path
print 'file= ' + file
print 'netloc= ' + netloc
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Exact Duplicate: stackoverflow.com/questions/258746/slicing-url-with-python –  S.Lott May 19 '09 at 10:47
    
Not quite the same as 258746, this question had a slightly different goal and the main focus of asking was about the best (Pythonic) way to accomplish the task. –  Shawn Swaner May 20 '09 at 8:17

2 Answers 2

up vote 6 down vote accepted

Since your requirements on what parts you want are different from what urlparse gives you, that's as good as it's going to get. You could, however, replace this:

partCount = len(pathParts) - 1

path = "/"
for i in range(2, partCount):
    path += pathParts[i] + "/"

With this:

path = '/'.join(pathParts[2:-1])
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I'd be inclined to start out with urlparse. Also, you can use rsplit, and the maxsplit parameter of split and rsplit to simplify things a bit:

_, netloc, path, _, q, _ = urlparse(url)
_, base, path = path.split('/', 2) # 1st component will always be empty
path, file = path.rsplit('/', 1)
if q: file += '?' + q
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