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I'm crawling through an HTML page and I want to extract the img srcs and the a hrefs.

On the particular site, all of them are encapsulated in double quotes.

I've tried a wide variety of regexps with no success. Assume characters inside the double-quotes will be [-\w/] (printable characters [a-zA-Z\d-_] and / and .)

In python:'img\s+src="(?P<src>[\w-/]+_"', line)

Doesn't return anything, but'img\s+src="(?P[-\w[/]]+)"', line)

Returns wayy to much (i.e., does not stop at the " ).

I need help creating the right regexp. Thanks in advance!

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Obligatory: – Daenyth Apr 27 '12 at 15:54
True, can't parse html with regexes, but you can find certain things inside it, and for quick scripts etc. it may be the right tool. – OlliM Apr 27 '12 at 15:58
@Daenyth, yes, I know that. I've tutored many people on the pumping lemma for regular and context-free grammars. The regexp I'm trying to find is simply a field inside of a tag, which is most certainly regular. – B. VB. Apr 27 '12 at 16:04
@B.VB.: Regardless, not using regex is much easier. See my answer. – Daenyth Apr 27 '12 at 16:08
@B.VB., no, because that <img src="..."> could be inside a <!-- comment -->. Or a string inside a <script> block. Or any other number of strange and unexpected situations that a regex simply can't handle. – josh3736 Apr 27 '12 at 16:09

3 Answers 3

up vote 2 down vote accepted

A good trick for finding things inside quotes you do "([^"]+)". So you search for any characters but the quote that are between quotes.

For help with creating regular expressions I can strongly recommend Expresso ( )

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I need help creating the right regexp.

No, you need help in finding the right tool.

Try BeautifulSoup.

(If you insist on using regular expressions - and I'd advise against it - try changing the greedy + to non-greedy +?).

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or lxml for xpath support. – RanRag Apr 27 '12 at 15:54

Here's an example of a better way to do it than with regex, using the excellent lxml library and xpath

In [1]: import lxml.html
In [2]: doc = lxml.html.parse('')
In [3]: doc.xpath('//img/@src')
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