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I have a string s with nested brackets: s = "AX(p>q)&E((-p)Ur)"

I want to remove all characters between all pairs of brackets and store in a new string like this: new_string = AX&E

i tried doing this:

p = re.compile("\(.*?\)", re.DOTALL)
new_string = p.sub("", s)

It gives output: AX&EUr)

Is there any way to correct this, rather than iterating each element in the string?

share|improve this question
    
why did you start another similar one? stackoverflow.com/questions/5846576/python-string-manipulation/… –  ghostdog74 May 1 '11 at 8:09
    
@ghostdog74 Prob. because the OP posted a non-nesting example there, and only realized through the answers that he needs to cover nesting as well. –  ThomasH May 1 '11 at 9:27
    
yea. sorry about that :). I tried editing the previous post, seeing as i got no replies, i thought i'd make a new post. –  Jay May 1 '11 at 12:06

7 Answers 7

up vote 5 down vote accepted

Another simple option is removing the innermost parentheses at every stage, until there are no more parentheses:

p = re.compile("\([^()]*\)")
count = 1
while count:
    s, count = p.subn("", s)

Working example: http://ideone.com/WicDK

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3  
You don't need to do a search, use re.subn() which returns both the new string and a count of substitutions made ... repeat until count is zero. –  John Machin May 1 '11 at 9:21
    
@John - Thanks! I was able to write something like ideone.com/0zEAO - count = 1; while count != 0: s, count = p.subn("", s) - does that seem simple enough? Can/Should I short it down to a one-liner? –  Kobi May 1 '11 at 9:36
    
@Kobi: Just do while count: instead of while count != 0:. –  John Machin May 1 '11 at 11:30
    
@Kobi: It can be shortened a little further by hoisting the .subn out of the loop. –  John Machin May 1 '11 at 11:35
1  
@Kobi: Do xsubn = re.compile(yadda_yadda).subn then in the loop do s, count = xsubn('', s) –  John Machin May 1 '11 at 12:27

You can just use string manipulation without regular expression

>>> s = "AX(p>q)&E(qUr)"
>>> [ i.split("(")[0] for i in s.split(")") ]
['AX', '&E', '']

I leave it to you to join the strings up.

share|improve this answer
>>> import re
>>> s = "AX(p>q)&E(qUr)"
>>> re.compile("""\([^\)]*\)""").sub('', s)
'AX&E'
share|improve this answer
    
that works. But can you please explain the ezpression re.compile("""([^)]*)""").sub('', s) –  Jay May 1 '11 at 5:19
    
That regex matches an opening parenthesis, any number of characters that aren’t parentheses, and then a close parenthesis. –  Lawrence Velázquez May 1 '11 at 5:24
    
YEs. But that doesn't work for strings with nested brackets. Like this: AX(p>q)&E((-p)Ur) –  Jay May 1 '11 at 5:33
    
@Jay If you have arbitrary depth nesting, you probably should reconsider using regexes and go with something like @ghostdog74 suggested, but regarding nesting. –  Daniel Kluev May 1 '11 at 10:21

Yeah, it should be:

>>> import re
>>> s = "AX(p>q)&E(qUr)"
>>> p = re.compile("\(.*?\)", re.DOTALL)
>>> new_string = p.sub("", s)
>>> new_string
'AX&E'
share|improve this answer

You can use PyParsing to parse the string:

from pyparsing import nestedExpr
import sys

s = "AX(p>q)&E((-p)Ur)"
expr = nestedExpr('(', ')')
result = expr.parseString('(' + s + ')').asList()[0]
s = ''.join(filter(lambda x: isinstance(x, str), result))
print(s)

Most code is from: How can be implemented recursive regexp in python?

share|improve this answer
    
The last two lines are from somewone who doesn't know much Python but can use Google. I'm pretty sure the print is right... –  Kobi May 1 '11 at 7:29
2  
a more condensed and clean way to replace the last two lines is this: print ''.join(item for item in result if isinstance(item, str)) –  Gabi Purcaru May 1 '11 at 7:51
    
Dear downvoter - It's very possible there's an error here somewhere - I don't have Python here and didn't check the whole code, just a part on IDEONE, and gave reference to the rest. I don't mind the -2, but I'd appreciate a correction! –  Kobi May 1 '11 at 12:13

Nested brackets (or tags, ...) are something that are not possible to handle in a general way using regex. See http://www.amazon.de/Mastering-Regular-Expressions-Jeffrey-Friedl/dp/0596528124/ref=sr_1_1?ie=UTF8&s=gateway&qid=1304230523&sr=8-1-spell for details why. You would need a real parser.

It's possible to construct a regex which can handle two levels of nesting, but they are already ugly, three levels will already be quite long. And you don't want to think about four levels. ;-)

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2  
This is true for Python's regex engine; however, other implementations like .NET or recent Perl/PHP versions do support recursive regexes. –  Tim Pietzcker May 1 '11 at 8:30
    
Can you please provide a pointer to some documentation and/or code sample? Would be very interesting to me! –  Achim May 1 '11 at 8:34
    
Try something like this: \((?:[\w\s]++|(?R))*\) - regexr.com?2tln2 . I'm sure you can find the data if you look for it though. –  Kobi May 1 '11 at 8:48
    
Next, the claim that every extra level is extra ugly isn't very correct either. Using the recursive pattern as a base, 0 levels (base): \([\w\s]*+\). 1 Level: \((?:[\w\s]++|\([\w\s]*+\))*\), 2 Levels: \((?:[\w\s]++|\((?:[\w\s]++|\([\w\s]*+\))*\))*\) . Every extra level is a little more complex (linearly), and you can easily build that string automatically for any given level of nesting. (you basically paste the pattern instead of (?R). –  Kobi May 1 '11 at 8:58

You could use re.subn():

import re

s = 'AX(p>q)&E((-p)Ur)'
while True:
    s, n = re.subn(r'\([^)(]*\)', '', s)
    if n == 0:
        break
print(s)

Output

AX&E
share|improve this answer
    
Already suggested in my comment on one of @Kobi's answers over 2.5 hours earlier. –  John Machin May 1 '11 at 12:23
    
@John Machin: I know. I saw it after posting the answer. Initially I've encountered that code 4 years ago velocityreviews.com/forums/… –  J.F. Sebastian May 1 '11 at 12:37

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