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Let's say I have this code:

>>> import urlparse
>>> url = "http://google.com"
>>> s = urlparse.urlsplit(url)
>>> print s
SplitResult(scheme='http', netloc='google.com', path='', query='', fragment='')
>>> print 'scheme ',s.scheme    
scheme  http
>>> print 'netloc ',s.netloc
netloc  google.com

As you can see, I can iterate over the items manually, but how can I do this automatically? I want to do something like this:

# This doesn't work:
for k,v in s.items():
    print '%s : %s'%(k,v)
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2 Answers 2

up vote 6 down vote accepted

You could use the internal _asdict method:

>>> import urlparse
>>> url = "http://google.com"
>>> s = urlparse.urlsplit(url)
>>> s
SplitResult(scheme='http', netloc='google.com', path='', query='', fragment='')
>>> s._asdict()
OrderedDict([('scheme', 'http'), ('netloc', 'google.com'), ('path', ''), ('query', ''), ('fragment', '')])
>>> d = s._asdict()
>>> for k,v in d.items():
...     print k, repr(v)
... 
scheme 'http'
netloc 'google.com'
path ''
query ''
fragment ''

To clarify a point raised in the comments, despite the prefix _, which usually indicates a method not part of a public interface, the method is a public one. It's given the prefix to avoid name conflicts, as the namedtuple docs explain [link]:

To prevent conflicts with field names, the method and attribute names start with an underscore.

And in Python 3, this is much easier due to an implementation change:

>>> vars(urllib.parse.urlsplit("http://www.google.ca"))
OrderedDict([('scheme', 'http'), ('netloc', 'www.google.ca'), ('path', ''), ('query', ''), ('fragment', '')])
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Very good! Thank you ! That's exactly what I need –  Vor Oct 11 '12 at 17:35
    
Is the _asdict() method documented anywhere? I didn't see it. –  Matt Oct 11 '12 at 17:36
    
@Matt docs.python.org/dev/library/… –  TheZ Oct 11 '12 at 17:38
    
I found it by looking at help(s), where s is the SplitResult object. –  DSM Oct 11 '12 at 17:38
    
@DSM Ahh, okay. I wasn't aware that SplitResult was a namedtuple. The documentation I was reading about urlparse just said it was a tuple. –  Matt Oct 11 '12 at 17:41
>>> url = "http://google.com"
>>> s = urlparse.urlsplit(url)
>>> scheme, netloc, path, query, fragment = s
>>> scheme
'http'
>>> netloc
'google.com'
>>> path
''
>>> query
''
>>> fragment
''

As shown above the SplitResult is really a fancy tuple so you can use standard assignment as well.

>>> scheme, netloc, _, _, _ = s # I only want the scheme and netloc

Enjoy.

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Thank you for your answer –  Vor Oct 11 '12 at 17:40

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