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.

I have the following string

http://example.com/variable/controller/id32434242423423234?param1=321&param2=4324342

How in best way to extract id value, in this case - 32434242423423234

Regardz, Mladjo

share|improve this question
add comment

4 Answers

up vote 7 down vote accepted

You could just use a regular expression, e.g.:

import re

s = "http://example.com/variable/controller/id32434242423423234?param1=321&param2=4324342"

m = re.search(r'controller/id(\d+)\?',s)
if m:    
    print "Found the id:", m.group(1)

If you need the value as an number rather than a string, you can use int(m.group(1)). There are plenty of other ways of doing this that might be more appropriate, depending on the larger goal of your code, but without more context it's hard to say.

share|improve this answer
    
Works like a charm, thx a lot –  Mladen Mar 6 '11 at 13:23
1  
Though it is not strictly necessary in this case, please, add r before a string with a regex to avoid gotchas such as '[\f]' (note the difference between list('\f') and list(r'\f')). –  J.F. Sebastian Mar 8 '11 at 20:46
    
@J.F. Sebastian: thanks for the suggestion - I've made that change. (Excellent username, BTW :)) –  Mark Longair Mar 8 '11 at 21:04
add comment

While Regex is THE way to go, for simple things I have written a string parser. In a way, is the (uncomplete) reverse operation of a string formatting operation with PEP 3101. This is very convenient because it means that you do not have to learn another way of specifying the strings.

For example:

>>> 'The answer is {:d}'.format(42)
The answer is 42

The parser does the opposite:

>>> Parser('The answer is {:d}')('The answer is 42') 
42

For your case, if you want an int as output

>>> url = 'http://example.com/variable/controller/id32434242423423234?param1=321&param2=4324342'
>>> fmt = 'http://example.com/variable/controller/id{:d}?param1=321&param2=4324342'
>>> Parser(fmt)(url)
32434242423423234

If you want a string:

>>> fmt = 'http://example.com/variable/controller/id{:s}?param1=321&param2=4324342'
>>> Parser(fmt)(url)
32434242423423234

If you want to capture more things in a dict:

>>> fmt = 'http://example.com/variable/controller/id{id:s}?param1={param1:s}&param2={param2:s}'
>>> Parser(fmt)(url)
{'id': '32434242423423234', 'param1': '321', 'param2': '4324342'}

or in a tuple:

If you want to capture more things in a dict:

>>> fmt = 'http://example.com/variable/controller/id{:s}?param1={:s}&param2={:s}'
>>> Parser(fmt)(url)
('32434242423423234', '321', '4324342')

Give it a try, it is hosted here

share|improve this answer
add comment
>>> import urlparse
>>> res=urlparse.urlparse("http://example.com/variable/controller/id32434242423423234?param1=321&param2=4324342")
>>> res.path
'/variable/controller/id32434242423423234'
>>> import posixpath
>>> posixpath.split(res.path)
('/variable/controller', 'id32434242423423234')
>>> directory,filename=posixpath.split(res.path)
>>> filename[2:]
'32434242423423234'

Using urlparse and posixpath might be too much for this case, but I think it is the clean way to do it.

share|improve this answer
    
On Windows os.path.split() doesn't work as you expect. Use posixpath.split() instead. –  J.F. Sebastian Mar 8 '11 at 20:38
    
That is interesting; I am using Python 2.6.5 on Windows XP. What version of Windows does that not work with? –  utku.zih Mar 8 '11 at 21:14
    
os.path.split() on Windows uses both separators r'\/' and calls splitdrive() on the argument - you don't want that, just use posixpath.split(). –  J.F. Sebastian Mar 11 '11 at 16:15
add comment
>>> s
'http://example.com/variable/controller/id32434242423423234?param1=321&param2=4324342'
>>> s.split("id")
['http://example.com/variable/controller/', '32434242423423234?param1=321&param2=4324342']
>>> s.split("id")[-1].split("?")[0]
'32434242423423234'
>>>
share|improve this answer
add comment

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.