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How do I retrieve all of the HTML contained inside a tag?

hxs = HtmlXPathSelector(response)
element = hxs.select('//span[@class="title"]/')
perhaps = hxs.select('//span[@class="title"]/html()')
html_of_tag = ?

EDIT: if I look at the documentation, I see only methods to return a new xpathselectorlist, or just the raw text inside a tag. I want to retrieve not a new list or just text, but the source code HTML inside a tag. e.g.:

<html>
    <head>
        <title></title>
    </head>
    <body>
        <div id="leexample">
            justtext
            <p class="ihatelookingforfeatures">
                sometext
            </p>
            <p class="yahc">
                sometext
            </p>
        </div>
        <div id="lenot">
            blabla
        </div>
    an awfuly long example for this.
    </body>
</html>

I want to do a method like such hxs.select('//div[@id="leexample"]/html()') that shal return me the HTML inside of it, like this:

justtext
<p class="ihatelookingforfeatures">
    sometext
</p>
<p class="yahc">
    sometext
</p>

I hope I cleared the ambiguousness around my question.

How to get the HTML from an HtmlXPathSelector in Scrapy? (perhaps a solution out-side scrapy's scope?)

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What have you tried? No really, what have you tried? –  inspectorG4dget Jul 13 '12 at 3:27
    
What do you mean by "retrieve all of the HTML"? You need to show an example. –  lwburk Jul 13 '12 at 3:36
    
my original thought was to go recursively over all teh tags inside a tag, reproduce them as html, but that's waaay to complicated, somebody must have thought about something simpler.. –  mirandalol Jul 13 '12 at 3:44

5 Answers 5

Call .extract() on your XpathSelectorList. It shall return a list of unicode strings contains the HTML content you want.

hxs.select('//div[@id="leexample"]/*').extract()

Update

# This is wrong
hxs.select('//div[@id="leexample"]/html()').extract()

/html() is not a valid scrapy selector. To extract all children, use '//div[@id="leexample"]/*' or '//div[@id="leexample"]/node()'. Note that, node() will return textNode, the result kind of like:

[u'\n   ',
 u'<a href="image1.html">Name: My image 1 
' ]
share|improve this answer
    
/html() is not supported, i'm not even sure if its valid. Scrapy will throw: ValueError: Invalid XPath: //h1/html() –  Sjaak Trekhaak Jul 19 '12 at 9:11

Use:

//span[@class="title"]/node()

this selects all nodes (elements, text-nodes, processing-instructions and comments) that are children of any span element in the XML document whose class attribute has the value "title".

If you want to get only the children-nodes of the first such span in the document, use:

(//span[@class="title"])[1]/node()
share|improve this answer
    
It's nice, but not what I asked. it returns a list of elements -> I need the HTML behind those elements. not nodes => plain HTML. –  mirandalol Jul 13 '12 at 4:11
    
@Saga: This cannot be done with XPath -- you need within the progamming language that hosts XPath to use a particular DOM method/property (such as OuterXML or InnerXml -- or these may be named OuterHtml / InnerHtml -- or in other DOM -- node.Save()) –  Dimitre Novatchev Jul 13 '12 at 5:07

similiary to what @xiaowl pointed out, using hxs.select('//div[@id="leexample"]').extract() would retrieve all the HTML contents of the tag retrieven from the xPath query: //div[@id="leexample"].

so for the record, I ended up with;

post = postItem() #body = Field #/in item.py
post['body'] = hxs.select('//span[@id="edit' + self.postid+ '"]').extract()
open('logs/test.log', 'wb').write(str(post['body']))
#logs.test.log contains all the HTML inside the tag selected by the query.
share|improve this answer
    
If xiaowl's answer was helptful, please accept/upvote his answer. –  warvariuc Jul 13 '12 at 4:49

It's actually not that hard as it seems. Just remove the final / of your XPath query, and use the extract() method. I've ran an example in scrapy shell, here's a shortened version:

sjaak:~ sjaakt$ scrapy shell
2012-07-19 11:06:21+0200 [scrapy] INFO: Scrapy 0.14.4 started (bot: scrapybot)
>>> fetch('http://www.nu.nl')
2012-07-19 11:06:34+0200 [default] INFO: Spider opened
2012-07-19 11:06:34+0200 [default] DEBUG: Crawled (200) <GET http://www.nu.nl> (referer: None)
>>> hxs.select("//h1").extract()
[u'<h1>    <script type="text/javascript">document.write(NU.today())</script>.\n    Het laatste nieuws het eerst op NU.nl    </h1>\n    ']
>>> 

To get only the inner content of a tag, use add /* to your XPath query. Example:

>>> hxs.select("//h1/*").extract()
[u'<script type="text/javascript">document.write(NU.today())</script>.\n    Het laatste nieuws het eerst op NU.nl    ']
share|improve this answer

Though late I leave this for the record.

What I do is:

html = ''.join(hxs.select('//span[@class="title"]/node()').extract())

Or if we want to match various nodes:

elements = hxs.select('//span[@class="title"]')
html = [''.join(e) for e in elements.select('./node()')]
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