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What's the cleanest way to extract URLs from a string using Python?

Considering a string as follows:

string = "<p>Hello World</p><a href="http://example.com">More Examples</a><a href="http://example2.com">Even More Examples</a>"

How could I, with Python, extract the urls, inside the anchor tag's href? Something like:

>>> url = getURLs(string)
>>> url
['http://example.com', 'http://example2.com']

Thanks!

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marked as duplicate by karim79, marc_s, agf, Jeff Atwood Aug 1 '11 at 5:12

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
Don't try to parse HTML with regexp. Look for a HTML parser, that can extract the href value for you. –  Anders Lindahl Jul 30 '11 at 12:28
    
@Judge John Deed: better be lazy. –  pillmuncher Jul 30 '11 at 13:02
    
Yep, it's a dupe, but this version of the question is better written. –  Michael Scheper Jun 7 '14 at 0:02

2 Answers 2

up vote 58 down vote accepted
import re

url = '<p>Hello World</p><a href="http://example.com">More Examples</a><a href="http://example2.com">Even More Examples</a>'

urls = re.findall('http[s]?://(?:[a-zA-Z]|[0-9]|[$-_@.&+]|[!*\(\),]|(?:%[0-9a-fA-F][0-9a-fA-F]))+', url)

>>> print urls
['http://example.com', 'http://example2.com']
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In any sort of normal scraping where the text portion of the href is also a link rather than descriptive text, this just gives duplicates. –  miR Sep 16 '14 at 13:16
    
This is great, thanks! –  radtek Jan 13 at 14:26
1  
For those modifying this regex, note that the '-' in the [$-_@.&+] is acting as a range operator and not a character. This means certain chairs (e.g., ',') are represented more than once. –  John Lehmann May 12 at 12:40
    
This regex does not consider URL fragments (the # suffix). –  Jan-Philip Gehrcke Jun 24 at 2:09

There are two ways to do this. It's super simple to write a regex that will grab whatever value is between <a href= and >. This works pretty well:

>>> s = "<p>Hello World</p><a href="http://example.com">More Examples</a><a href="http://example2.com">Even More Examples</a>"
>>> re.findall('<a href="?\'?([^"\'>]*)', s)
['http://example.com', 'http://example2.com']

But this is really only suitable for a one-off hacky scripty thing. If at any point you think you might be doing anything more than scraping urls for your own random purposes, you should really just take the extra two minutes now to use a proper parser. Here's a really simple subclass of HTMLParser that does what you want.

>>> class MyParser(HTMLParser):
...     def __init__(self, output_list=None):
...         HTMLParser.__init__(self)
...         if output_list is None:
...             self.output_list = []
...         else:
...             self.output_list = output_list
...     def handle_starttag(self, tag, attrs):
...         if tag == 'a':
...             self.output_list.append(dict(attrs).get('href'))
... 
>>> p = MyParser()
>>> p.feed(s)
>>> p.output_list
['http://example.com', 'http://example2.com']

You could even create a new method that accepts a string, calls feed, and returns output_list. In short, this is a vastly more powerful and extensible way than REs to extract information from html.

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