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I got some help with this earlier today but I cannot figure out the last part of the problem I am having. This regex search returns all of the matches in the open file from the input. What I need to do is also find which part of the file that the match comes from.

Each section is opened and closed with a tag. For example one of the tags opens with <opera> and ends with </opera>. What I want to be able to do is when I find a match I want to either go backwards to the open tag or forwards to the close tag and include the contents of the tag, in this case "opera" in the output. My question is can I do this with an addition to the regular expression or is there a better way? Here is the code I have that works great already:

text = open_file.read()
#the test string for this code is "NNP^CC^NNP"
grammarList = raw_input("Enter your grammar string: ");

tags = grammarList.split("^")
tags_pattern = r"\b" + r"\s+".join(r"(\w+)/{0}".format(tag) for tag in tags) + r"\b" 
# gives you r"\b(\w+)/NNP\s+(\w+)/CC\s+(\w+)/NNP\b"

from re import findall
print(findall(tags_pattern, text))
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2 Answers

up vote 0 down vote accepted

One way to do it would be to find all occurrences of your start and end section tags (say they're <opera> and </opera>), get the indices, and compare them to each match of tags_pattern. This uses finditer which is like findall but returns indices too. Something like:

startTags = re.finditer("<opera>",text)
endTags   = re.finditer("</opera>",text)

matches = re.finditer(tags_pattern,text)

# Now, [m.start() for m in matches] gives the starting index into `text`.
# if <opera> starts at subindices 0, 1000, 2345
# and you get a match starting at subindex 1100,
#  then it's in the 1000-2345 block.
for m in matches:
    # find first
    sec = [i for i in xrange(len(startTags)) if i>startTags[i].start()]
    if len(sec)=0:
        print "err couldn't find it"
    else:
        sec = sec[0]
        print "found in\n" + text[startTags[sec].start():endTags[sec].end()]

(Note: you can get the matched text with m.group() Default () has group 0 (ie entire string), and you can use m.group(i) for the ith capturing group).

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Thanks mathematical.coffee. I think this is a workable idea but it returns an error saying that the callable-iterator has no len(). I feel as though it might be easier just to use the regular expressions, no? I have the worst problem right now which is the regex that I have running I don't fully understand. Could I not just add a search string to the regex that asks for what is after the next "</" and before the next ">"? That would give me the tag, no? My problem is I do not know how to do this. –  English Grad Feb 5 '12 at 13:29
    
Well, you could have the regex being some variation of '<opera>(?=.*?your_search_regex)' but the problem is if there can be multiple occurences of your tag regex within each section, then this will only pick up one. –  mathematical.coffee Feb 5 '12 at 23:21
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from BeautifulSoup import BeautifulSoup

tags = """stuff outside<opera>asdfljlaksdjf lkasjdfl kajsdlf kajsdf stuff
<asdf>asdf</asdf></opera>stuff outside"""    

soup = BeautifulSoup(tags)

soup.opera.text
Out[22]: u'asdfljlaksdjf lkasjdfl kajsdlf kajsdf stuffasdf'

str(soup.opera)
Out[23]: '<opera>asdfljlaksdjf lkasjdfl kajsdlf kajsdf stuff
<asdf>asdf</asdf></opera>'
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