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Although I know I could use some hugeass regex such as the one posted here I'm wondering if there is some tweaky as hell way to do this either with a standard module or perhaps some third-party add-on?

Simple question, but nothing jumped out on Google (or Stackoverflow).

Look forward to seeing how y'all do this!

Jamie

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Practically, in this situation people often do not match strictly for urls patterns. Typically, trailing punctuations are considered not part of the URL. This kind of choice is application-specific, hence the lack of standard library module. –  ddaa Feb 6 '09 at 13:06
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@S.Lott- he's asking about parsing urls from strings not anchors from html –  Yarin May 31 '12 at 14:18

6 Answers 6

up vote 8 down vote accepted

Use a regular expression.

Reply to comment from the OP: I know this is not helpful. I am telling you the correct way to solve the problem as you stated it is to use a regular expression.

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I know I could use a regex!!!! I'm asking if there is a module or other way to do this without coming up with the ultimate regex to extract URL's. –  jkp Feb 6 '09 at 11:55
    
In the end I appologise to ddaa. The only way is to use a regex and there is not a module out there that exposes this in a ready-wrapped form. The suggestion to use BeautifulSoup does not work when extracting from plain text. –  jkp Feb 6 '09 at 13:02
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And here is the regex above in python format: match_urls = re.compile(r"""((?:[a-z][\w-]+:(?:/{1,3}|[a-z0-9%])|www\d{0,3}[.]|[a-z0-9.\-]+[.‌​][a-z]{2,4}/)(?:[^\s()<>]+|(([^\s()<>]+|(([^\s()<>]+)))*))+(?:(([^\s()<>]+|(‌​([^\s()<>]+)))*)|[^\s`!()[]{};:'".,<>?«»“”‘’]))""", re.DOTALL) –  Mikael Lepistö Jul 3 '11 at 17:28
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re_match_urls = re.compile(r"""((?:[a-z][\w-]+:(?:/{1,3}|[a-z0-9%])|www\d{0,3}[.]|[a-z0-9.\-]+[.‌​][a-z]{2,4}/)(?:[^\s()<>]+|(([^\s()<>]+|(([^\s()<>]+)))*))+(?:(([^\s()<>]+|(‌​([^\s()<>]+)))*)|[^\s`!()[]{};:'".,<>?«»“”‘’]))""", re.DOTALL) And e.g. to add <a> tags for links could be done like this: re_match_urls.sub(lambda x: '<a href="%(url)s">%(url)s</a>' % dict(url=str(x.group())), string_to_match) –  Mikael Lepistö Dec 19 '11 at 6:54

Look at Django's approach here: django.utils.urlize(). Regexps are too limited for the job and you have to use heuristics to get results that are mostly right.

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You can use BeautifulSoup.

def extractlinks(html):
    soup = BeautifulSoup(html)
    anchors = soup.findAll('a')
    links = []
    for a in anchors:
        links.append(a['href'])
    return links

Note that the solution with regexes is faster, although will not be as accurate.

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Sebastian: I know BeautifulSoup but the problem is that it will only extract anchored URLs. I'm trying to search plain text for anything URL like. Thanks for the suggestion though. –  jkp Feb 6 '09 at 12:18

if you know that there is a URL following a space in the string you can do something like this:

s is the string containg the url

>>> t = s[s.find("http://"):]
>>> t = t[:t.find(" ")]

otherwise you need to check if find returns -1 or not.

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what about https://? –  Brandon H Nov 24 '09 at 15:27
    
>>> t = s[s.find("https://"):] >>> t = t[:t.find(" ")] –  islam Jun 9 '10 at 16:09
    
won't work on https. –  Ashwini Chaudhary Jun 27 '12 at 13:02
    
... or ws:, git:, ftp:, mailto:, jabber:, etc. etc. –  Michael Scheper Jun 7 at 0:07

You can use this library I wrote:

https://github.com/imranghory/urlextractor

It's extremely hacky, but it doesn't rely upon "http://" like many other techniques, rather it uses the Mozilla TLD list (via the tldextract library) to search for TLDs (i.e ".co.uk", ".com", etc.) in the text and then attempts to construct urls around the TLD.

It doesn't aim to be RFC compliant but rather accurate for how urls are used in practice in the real world. So for example it will reject the technically valid domain "com" (you can actually use a TLD as a domain; although it's rare in practice) and will strip trail full-stops or commas from urls.

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How about your write your own module that implements that regex?

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Yup, ofcourse this is an option: again, really I wanted to know if anyone had already done this! Usually in the Python world there is a module somewhere to do the job. I'd rather not reinvent the wheel: and this is common problem. –  jkp Feb 6 '09 at 12:19
    
I can't believe somebody with 27k in StackOverflow credit would write this unhelpful an answer! It kinda mocks credit, IMHO. –  Michael Scheper Jun 7 at 0:09

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