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Anyone know an elegant way to get the entire contents of a soup object as a single string?

At the moment I'm getting contents, which is of course a list, and then iterating over it:

notices = soup.find("div", {"class" : "middlecontent"})
con = ""
for content in notices.contents:
    con += str(content)
print con

Thanks!

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1  
Also just use soup.find('div', 'middlecontent') - the second argument is class by default. –  Chris Morgan Dec 20 '10 at 11:31
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3 Answers

up vote 14 down vote accepted

What about contents = str(notices) ?

Or maybe contents = notices.renderContents(), which will hide the div tag.

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3  
in new Beautiful Soup 4, renderContents() is now encode_contents() –  David Xia Feb 11 '13 at 5:05
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You can use the join() method:

notices = soup.find("div", {"class": "middlecontent"})
contents = "".join([str(item) for item in notices.contents])

Or, using a generator expression:

contents = "".join(str(item) for item in notices.contents)
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5  
In modern versions of Python, the square brackets are unnecessary and even deprecated - leaving them out creates a generator comprehension instead of a list comprehension, which makes for somewhat better usage of memory and does not leak the name 'item' into the local variable scope. –  Karl Knechtel Dec 20 '10 at 11:28
    
@Karl, you're right, I guess I'm too fond of list comprehensions. Answer updated. –  Frédéric Hamidi Dec 20 '10 at 12:09
    
The way out of that is to train yourself to think that [<comprehension stuff>] is just syntactic sugar for list(<comprehension stuff>) that leaks the iteration variable as a side effect. ;) –  Karl Knechtel Dec 20 '10 at 12:13
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But the list is recursive, so... I think this will work.
I'm new to python, so the code may look a little weird

getString = lambda x: \
    x if type(x).__name__ == 'NavigableString' \
    else "".join( \
    getString(t) for t in x)

contents = getString(notices)
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