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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.
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1 Answer

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)
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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
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