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I need to get content for this XPath:


It's copied from FireBug. How can I do this? I have a very large HTML document, so I don't want (and don't know how:) ) to grep it. Thanks.

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2 Answers 2

up vote 1 down vote accepted

lxml can handle html (and provides pretty good xpath support):

>>> import lxml.html
>>> tree = lxml.html.parse('test.html')
>>> for node in tree.xpath('/html/body/div/table[2]/tbody/tr/td[2]'):
...     print node.text
first row, second column
second row, second column

Just make sure that you use it's html parser.

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Thanks a lot!!! That works fine. I have found similar solution but it should work also in cases if needed text is not in old xpath anymore. – user553131 Dec 24 '10 at 9:25
import lxml.html as h
tree = h.parse("keys_results.html")
text = tree.xpath("string(//*[contains(text(),'needed_text')])")
print text
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