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I need a regex that matches

re.compile('userpage')


href="www.example.com?u=userpage&as=233&p=1"
href="www.example.com?u=userpage&as=233&p=2"

I want to get all urls that have u=userpage and p=1

How can I modify the regex above to find both u=userpage and p=1?

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2  
it's like if you said I'd like to go out. How do i jump from the window properly so I don't break my leg?, when the better approach is to use your door. However, there's always more ways, how to do it.. –  mykhal Aug 14 '10 at 0:48

6 Answers 6

if you want to use, in my opinion, something more proper approach, than regexp:

from urlparse import *
urlparsed = urlparse('www.example.com?u=userpage&as=233&p=1')
# -> ParseResult(scheme='', netloc='', path='www.example.com', params='', query='u=userpage&as=233&p=1', fragment='')
qdict = dict(parse_qsl(urlparsed.query))
# -> {'as': '233', 'p': '1', 'u': 'userpage'}
qdict.get('p') == '1' and qdict.get('u') == 'userpage'
# -> True
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Ugh. import *. =p –  katrielalex Aug 14 '10 at 0:33
    
@katrielalex what' you did not sees such thing yet? :) btw, originally it was: from urlparse import urlparse, parse_qsl, but i shortened it for sake of readability (it's not the key part, and from urlparse import urlparse is also not very aesthetical) –  mykhal Aug 14 '10 at 0:36
    
Heh, I know, don't worry. It's just one of those things like don't parse HTML with regex that come up an awful lot here. =p –  katrielalex Aug 14 '10 at 0:39
import lxml.html, urlparse

d = lxml.html.parse(...)
for link in d.xpath('//a/@href'):
    url = urlparse.urlparse(link)
    if not url.query:
        continue
    params = urlparse.parse_qs(url.query)
    if 'userpage' in params.get('u', []) and '1' in params.get('p', []):
        print link
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+1 nice answer. –  nosklo Aug 14 '10 at 0:26

Regex is not a good choice for this because 1) the params could appear in either order, and 2) you need to do extra checks for query separators so that you don't match potential oddities like "flu=userpage", "sp=1", "u=userpage%20haha", or "s=123". (Note: I missed two of those cases in my first pass! So did others.) Also: 3) you already have a good URL parsing library in Python which does the work for you.

With regex you'd need something clumsy like:

q = re.compile(r'([?&]u=userpage&(.*&)?p=1(&|$))|([?&]p=1&(.*&)?u=userpage(&|$))')
return q.search(href) is not None

With urlparse you can do this. urlparse gives you a little more than you want but you can use a helper function to keep the result simple:

def has_qparam(qs, key, value):
    return value in qs.get(key, [])

qs = urlparse.parse_qs(urlparse.urlparse(href).query)
return has_qparam(qs, 'u', 'userpage') and has_qparam(qs, 'p', '1')
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those qs['u'] == 'userpage' won't work, because parse_qs dict has list values.. might be then 'userpage' in qs['u'].. or use parse_qsl (tuple) and convert to dict –  mykhal Aug 14 '10 at 0:40
    
Ah, yes, that's tripped me up in the past too :-P . Fixed. –  Owen S. Aug 14 '10 at 0:48

/((u=userpage).*?(p=1))|((p=1).*?(u=userpage))/

This will get all strings that contain the two bits you're looking for.

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ugly and inefficient, but probably working :) btw, i'd insert \> after p=1's –  mykhal Aug 14 '10 at 0:14
    
@mykhal, then you'd get an unusable RE (since it's not what Python REs use to indicate word boundaries -- there are many dialects of REs, and I think you're thinking about e.g. vim's). If you used instead \b, like in my answer, you wouldn't have this problem (since it is what Python REs use for the purpose;-). –  Alex Martelli Aug 14 '10 at 0:24
    
@Alex Martelli, you still do have problems. See my comment on your answer. –  habnabit Aug 14 '10 at 0:27
    
@[Alex Martelli] you're right, sir, thanks. i do not use the boundary in python rex often, if ever.. :) –  mykhal Aug 14 '10 at 0:29
    
@downvoter: I think this regex works. Did I say something incorrect? Or was it just an answer you ideologically disagreed with? If so, post a comment. –  Borealid Aug 14 '10 at 0:30

To make sure you don't accidentally match parts like bu=userpage, u=userpagezap, p=111 or zap=1, you need abundant use of the \b "word-boundary" RE pattern element. I.e.:

re.compile(r'\bp=1\b.*\bu=userpage\b|\bu=userpage\b.*\bp=1\b')

The word-boundary elements in the RE's pattern prevent the above-mentioned, presumably-undesirable "accidental" matches. Of course, if in your application they're not "undesirable", i.e., if you positively want to match p=123 and the like, you can easily remove some or all of the word-boundary elements above!-)

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+1 Forgot about partial matches. –  NullUserException Aug 14 '10 at 0:16
1  
\b doesn't protect you from everything. Your code still breaks on ?u=userpage%20whatever. –  habnabit Aug 14 '10 at 0:22
    
@Aaron, true, %-escapes do introduce a word-boundary. If you need to protect against that, (\?|\&)' as "word start" and (\&|$)` as "word end" might serve you better (or, unless you need portability across Python versions, you could use parse_qs, if you can correctly guess what module[s] it's in, in various versions of interest;-). –  Alex Martelli Aug 14 '10 at 0:28
1  
@Alex, why do you think parse_qs isn't portable? 2to3 fixes urlparse imports correctly. –  habnabit Aug 14 '10 at 0:37
1  
@Aaron, it's been in cgi_bin "since forever", in urlparse only recently -- right now, at work, I'm focused on writing code supporting 2.4 to 2.7, and future 2to3 runs, and there's enough headaches that avoidable ones are best avoided (sure, worst case, you can import "conditionally", that is, with try/except support, but I don't know how well that plays with 2to3). –  Alex Martelli Aug 14 '10 at 1:47

It is possible to do this with string hacking, but you shouldn't. It's already in the standard library:

>>> import urllib.parse
>>> urllib.parse.parse_qs("u=userpage&as=233&p=1")
{'u': ['userpage'], 'as': ['233'], 'p': ['1']}

and hence

import urllib.parse
def filtered_urls( urls ):
    for url in urls:
        try:
            attrs = urllib.parse.parse_qs( url.split( "?" )[ 1 ] )
        except IndexError:
            continue

        if "userpage" in attrs.get( "u", "" ) and "1" in attrs.get( "p", "" ):
            yield url

foo = [ "www.example.com?u=userpage&as=233&p=1", "www.example.com?u=userpage&as=233&p=2" ]

print( list( filtered_urls( foo ) ) )

Note that this is Python 3 -- in Python parse_qs is in urlparse instead.

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This raises a SyntaxError, and 'userpage' != ['userpage']. Also, why not urlparse.urlparse to get the query out of the URL? –  habnabit Aug 14 '10 at 0:16
    
True, but a pretty trivial one (= for ==). Forgot about the lists though, thanks. And urlparse is fine, but overkill if we just want the query string. –  katrielalex Aug 14 '10 at 0:22
2  
TypeError: argument of type 'NoneType' is not iterable; you can't do in on None. Please try your solution before you post it. –  habnabit Aug 14 '10 at 0:23
    
Argh. I tried it and then changed the Nones. +1 for being thorough, but I should point out that these are basically trivial bugs; if the OP wants to use the code they can easily fix the problems. –  katrielalex Aug 14 '10 at 0:28
    
@killown: works fine for me. Did you forget to pass in foo? –  katrielalex Aug 19 '10 at 14:05

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