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The following test reads a file, and using lxml.html generates the leaf nodes of the DOM/Graph for the page.

However, I'm also trying to figure out how to get the input from a "string". Using

 lxml.html.fromstring(s)

doesn't work, as this generates a "Element" as opposed to an "ElementTree".

So, I'm trying to figure out how to convert an element to an ElementTree.

Thoughts

test code::

import lxml.html
from lxml import etree    # trying this to see if needed 
                          # to convert from element to elementtree


  #cmd='cat osu_test.txt'
  cmd='cat o2.txt'
  proc=subprocess.Popen(cmd, shell=True,stdout=subprocess.PIPE)
  s=proc.communicate()[0].strip()

  # s contains HTML not XML text
  #doc = lxml.html.parse(s)
  doc = lxml.html.parse('osu_test.txt')
  doc1 = lxml.html.fromstring(s)

  for node in doc.iter():
  if len(node) == 0:
     print "aaa ",node.tag, doc.getpath(node)
     #print "aaa ",node.tag

  nt = etree.ElementTree(doc1)        <<<<< doesn't work.. so what will??
  for node in nt.iter():
  if len(node) == 0:
     print "aaa ",node.tag, doc.getpath(node)
     #print "aaa ",node.tag

===============================

update:::

(parsing html instead of xml) Added the changes suggested by Abbas. got the following errs:

    doc1 = etree.fromstring(s)
  File "lxml.etree.pyx", line 2532, in lxml.etree.fromstring (src/lxml/lxml.etree.c:48621)
  File "parser.pxi", line 1545, in lxml.etree._parseMemoryDocument (src/lxml/lxml.etree.c:72232)
  File "parser.pxi", line 1424, in lxml.etree._parseDoc (src/lxml/lxml.etree.c:71093)
  File "parser.pxi", line 938, in lxml.etree._BaseParser._parseDoc (src/lxml/lxml.etree.c:67862)
  File "parser.pxi", line 539, in lxml.etree._ParserContext._handleParseResultDoc (src/lxml/lxml.etree.c:64244)
  File "parser.pxi", line 625, in lxml.etree._handleParseResult (src/lxml/lxml.etree.c:65165)
  File "parser.pxi", line 565, in lxml.etree._raiseParseError (src/lxml/lxml.etree.c:64508)
lxml.etree.XMLSyntaxError: Entity 'nbsp' not defined, line 48, column 220

UPDATE:::

Managed to get the test working. I'm not exactly sure why. If someone with py chops wants to provide an explanation, that would help future people who stumble on this.

from cStringIO import StringIO from lxml.html import parse

doc1 = parse(StringIO(s))

for node in doc1.iter(): if len(node) == 0: print "aaa ",node.tag, doc1.getpath(node)

it appears that the StringIO module/class implements IO functionality which satisfies what the parse package needs to go ahead and process the input string for the test html. similar to what casting provides in other languages perhaps...

thanks

share|improve this question
    
The xml parser is objecting to the '&nbsp;' in your HTML. Your HTML has to be well formed and either must not contain characters that the parser cannot digest or they should be escaped correctly. –  Abbas Jan 12 '12 at 4:09
    
hey Abbas. I don't agree with what you're saying. The html in the test file now works, when I implement the solution I provided above, using the StringIO in the parse. –  tom smith Jan 12 '12 at 13:33
    
That's because you are now using an HTML parser (lxml.html) and StringIO. etree. etree tries to parse HTML but fails because of characters encoded for HTML (&nbsp;). I don't know why you would disagree with me when I proposed a solution based on your requirement of getting an ElementTree from etree by passing it an string. You later changed your solution, my solution is still valid for your original requirement. –  Abbas Jan 12 '12 at 13:41

3 Answers 3

To get the root tree from an _Element (generated with lxml.html.fromstring), you can use the getroottree method:

doc = lxml.html.parse(s)
tree = doc.getroottree()
share|improve this answer

The etree.fromstring method parses an XML string and returns a root element. The etree.ElementTree class is a tree wrapper around an element and as such requires an element for instantiation.

Therefore, passing the root element to the etree.ElementTree() constructor should give you what you want:

root = etree.fromstring(s)
nt = etree.ElementTree(root)
share|improve this answer
    
hey Abbas. thanks for the reply... tried it, got the err listed above. (i'm parsing html, instead of xml) –  tom smith Jan 12 '12 at 3:59
    
Please add your HTML to the question as well. –  Abbas Jan 12 '12 at 4:04

An _Element, such that is returned by a call like:

tree = etree.HTML(result.read(), etree.HTMLParser())

Can be made an _ElementTree like so:

tree    = tree.getroottree() # convert _Element to _ElementTree

Hope that's what you expect.

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