Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have a following html code

<ol>
<li>If someone is <b>able</b> to do something, they <a href="/wiki/can" title="can">can</a> do it.
<dl>
<dd><i>I'm busy today, so I won't be <b>able</b> to see you.</i></dd>
</dl>
</li>
</ol>

How can I extract text between <li> and <dl> tags.

I have tried this:

from bs4 import BeautifulSoup

s = """<ol>
    <li>If someone is <b>able</b> to do something, they <a href="/wiki/can" title="can">can</a> do it.
    <dl>
    <dd><i>I'm busy today, so I won't be <b>able</b> to see you.</i></dd>
    </dl>
    </li>
    </ol>
"""

soup = BeautifulSoup(s)

for line in soup.find_all('ol'):
    print line.li.get_text()

This will print

If someone is able to do something, they can do it.

I'm busy today, so I won't be able to see you.

I want only the first line.

If someone is able to do something, they can do it.
share|improve this question
up vote 4 down vote accepted

Loop over the descendants of the line.li object, collect all NavigableString text objects, and when you encounter the <dl> tag, stop:

from bs4 import NavigableString

for line in soup.find_all('ol'):
    result = []
    for descendant in line.li.descendants:
        if isinstance(descendant, NavigableString):
            result.append(unicode(descendant).strip())
        elif descendant.name == 'dl':
            break

    print u' '.join(result)

Demo:

>>> for line in soup.find_all('ol'):
...     result = []
...     for descendant in line.li.descendants:
...         if isinstance(descendant, NavigableString):
...             result.append(unicode(descendant).strip())
...         elif descendant.name == 'dl':
...             break
...     print u' '.join(result)
... 
If someone is able to do something, they can do it.

If you want to do this for all <li> tags (not just the first), you need to loop over the <li> tags found with .find_all() instead:

for line in soup.find_all('ol'):
    for item in line.find_all('li'):
        result = []
        for descendant in item.descendants:
            if isinstance(descendant, NavigableString):
                result.append(unicode(descendant).strip())
            elif descendant.name == 'dl':
                break

        print u' '.join(result)
share|improve this answer
    
Where the words "able" and "can" went? It must be - If someone is 'able' to do something, they 'can do' it. – Vinod Sep 9 '13 at 12:15
    
@Vinod: hrm, we lost the crucial .descendants attribute somewhere. :-) – Martijn Pieters Sep 9 '13 at 12:16
    
@Vinod: Fixed and retested; my apologies, not sure how I missed that. – Martijn Pieters Sep 9 '13 at 12:19
    
If <ol> tag contains multiple <li> with <dl>'s will it work. I have tested with <ol> <li>Around, near. <dl> <dd><i>He walked <b>about</b> the place, looking everywhere.</i></dd> </dl> </li> <li>(<i>numbers</i>) Close to; approximately; near; like. <dl> <dd><i>He was <b>about</b> thirteen years old.</i></dd> </dl> </li> <li>Having to do with, concerning, regarding. <dl> <dd><i>I will talk <b>about</b> dogs.</i></dd> </dl> </li> </ol> Our program prints "Around, near." only. Rest of the two <li>'s missing. – Vinod Sep 9 '13 at 12:27
    
.descendants lists only child nodes, and in document order, and the code stops at the first <dl> child tag. The line.li line from your original example only handles the first <li> tag in the <ol> tag, but my code will work fine in a loop over line.find_all('li') as well. – Martijn Pieters Sep 9 '13 at 12:31

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.