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Apologies if this is a simple question, I'm still pretty new to this, but I've spent a while looking for an answer and haven't found anything. I have a list that looks something like this horrifying mess:

['Organization name} ', '> (777) 777-7777} ', ' class="lsn-mB6 adr">1 Address, MA 02114 } ', ' class="lsn-serpListRadius lsn-fr">.2 Miles} MORE INFO YOUR LISTING MAP if (typeof(serps) !== \'undefined\') serps.arrArticleIds.push(\'4603114\'); ', 'Other organization} ', '> (555) 555-5555} ', ' class="lsn-mB6 adr">301 Address, MA 02121 } ', ' class="lsn-serpListRadius lsn-fr">.2 Miles} MORE INFO CLAIM YOUR LISTING MAP if (typeof(serps) !== \'undefined\') serps.arrArticleIds.push(\'4715945\'); ', 'Organization} ']

And I need to process it so that HTML.py can turn the information in it into a table. For some reason, HTML.py simply can't handle the monster elements (eg. 'class="lsn-serpListRadius lsn-fr">.2 Miles} MORE INFO YOUR LISTING MAP if (typeof(serps) !== \'undefined\') serps.arrArticleIds.push(\'4603114\'); ', etc). Fortunately for me, I don't actually care about the information in the monster elements and want to get rid of them.

I tried writing a regex that would match all more-than-two-letter all-caps words, to identify the monster elements, and got this:

re.compile('[^a-z]*[A-Z][^a-z]*\w{3,}')

But I don't know how to apply that to deleting the elements containing matches to that regex from the list. How would I do that/is that the right way to go about it?

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4 Answers 4

up vote 4 down vote accepted

I think your regex is incorrect, to match all entries that contain all-cap words with three or more characters, you should use something like this with re.search:

regex = re.compile(r'\b[A-Z]{3,}\b')

With that you can filter using a list comprehension or the filter built-in function:

full = ['Organization name} ', '> (777) 777-7777} ', ' class="lsn-mB6 adr">1 Address, MA 02114 } ', ' class="lsn-serpListRadius lsn-fr">.2 Miles} MORE INFO YOUR LISTING MAP if (typeof(serps) !== \'undefined\') serps.arrArticleIds.push(\'4603114\'); ', 'Other organization} ', '> (555) 555-5555} ', ' class="lsn-mB6 adr">301 Address, MA 02121 } ', ' class="lsn-serpListRadius lsn-fr">.2 Miles} MORE INFO CLAIM YOUR LISTING MAP if (typeof(serps) !== \'undefined\') serps.arrArticleIds.push(\'4715945\'); ', 'Organization} ']
regex = re.compile(r'\b[A-Z]{3,}\b')
# use only one of the following lines, whichever you prefer
filtered = filter(lambda i: not regex.search(i), full)
filtered = [i for i in full if not regex.search(i)]

Results in the following list (which I think is what you are looking for:

>>> pprint.pprint(filtered)
['Organization name} ',
 '> (777) 777-7777} ',
 ' class="lsn-mB6 adr">1 Address, MA 02114 } ',
 'Other organization} ',
 '> (555) 555-5555} ',
 ' class="lsn-mB6 adr">301 Address, MA 02121 } ',
 'Organization} ']
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First, store your regex, then use a list comprehension:

regex = re.compile('[^a-z]*[A-Z][^a-z]*\w{3,}')
okay_items = [x for x in all_items if not regex.match(x)]
share|improve this answer
    
This seemed like it should work, but for some reason it returns a list without the org names when using my original regex and when using F.J's it just spits out the same list I put in. Not sure why. –  RSid Aug 10 '11 at 18:20

without regex

def isNotMonster(x):
    return not any((len(word) > 2) and (word == word.upper()) for word in x.split())

okay_items = filter(isNotMonster, all_items)
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This returns only the names of the organizations--which actually is also helpful to me right now, so separately thanks, but it isn't what I was looking for. –  RSid Aug 10 '11 at 18:26

Or the very same but without compiling regex:

from re import match

ll = ['Organization name} ', '> (777) 777-7777} ', ' class="lsn-mB6 adr">1 Address, MA 02114 } ', ' class="lsn-serpListRadius lsn-fr">.2 Miles} MORE INFO YOUR LISTING MAP if (typeof(serps) !== \'undefined\') serps.arrArticleIds.push(\'4603114\'); ', 'Other organization} ', '> (555) 555-5555} ', ' class="lsn-mB6 adr">301 Address, MA 02121 } ', ' class="lsn-serpListRadius lsn-fr">.2 Miles} MORE INFO CLAIM YOUR LISTING MAP if (typeof(serps) !== \'undefined\') serps.arrArticleIds.push(\'4715945\'); ', 'Organization} ']

filteredData = [x for x in ll if not match(r'[^a-z]*[A-Z][^a-z]*\w{3,}', x)]

Edited:

from re import compile

rex = compile('[^a-z]*[A-Z][^a-z]*\w{3,}')
filteredData = [x for x in ll if not rex.match(x)]
share|improve this answer
    
If you're going to be running the same regex against many items in a list, you should compile it. Granted, Python is usually smart enough to compile it for you and cache it, but it's good to be explicit. –  Amber Aug 10 '11 at 17:10

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