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I am using re.sub() with some complicated patterns (created by the code) that can cause backtracking.

Is there any practical way to abort re.sub (say pretend that pattern is not found, or raise an error) after a certain number of iterations in Python 2.6?

Sample (this is of course a dumb pattern, but it's created dynamically by a complex text processing engine):

>>>re.sub('[i1l!|](?:[^i1l!|\\w]|[i1l!|])*[l1i!|](?:[^l1i!||\\w]|[l1i!|])*[i1l!|](?:[^i1l!|\\w]|[i1l!|])*[l1i!|](?:[^l1i!||\\w]|[l1i!|])*[i1l!|](?:[^i1l!|\\w]|[i1l!|])*[l1i!|](?:[^l1i!||\\w]|[l1i!|])*[i1l!|](?:[^i1l!|\\w]|[i1l!|])*[l1i!|](?:[^l1i!||\\w]|[l1i!|])*[i1l!|](?:[^i1l!|\\w]|[i1l!|])*[l1i!|](?:[^l1i!||\\w]|[l1i!|])*[i1l!|](?:[^i1l!|\\w]|[i1l!|])*[l1i!|](?:[^l1i!||\\w]|[l1i!|])*[i1l!|](?:[^i1l!|\\w]|[i1l!|])*[l1i!|](?:[^l1i!||\\w]|[l1i!|])*[i1l!|](?:[^i1l!|\\w]|[i1l!|])*[l1i!|](?:[^l1i!||\\w]|[l1i!|])*[i1l!|](?:[^i1l!|\\w]|[i1l!|])*[l1i!|](?:[^l1i!||\\w]|[l1i!|])*[i1l!|](?:[^i1l!|\\w]|[i1l!|])*[l1i!|](?:[^l1i!||\\w]|[l1i!|])*[i1l!|](?:[^i1l!|\\w]|[i1l!|])*[l1i!|](?:[^l1i!||\\w]|[l1i!|])*[i1l!|](?:[^i1l!|\\w]|[i1l!|])*[l1i!|](?:[^l1i!||\\w]|[l1i!|])*[i1l!|](?:[^i1l!|\\w]|[i1l!|])*[l1i!|](?:[^l1i!||\\w]|[l1i!|])*[i1l!|](?:[^i1l!|\\w]|[i1l!|])*[l1i!|](?:[^l1i!||\\w]|[l1i!|])*','*','ilililililililililililililililililililililililililililililililililil :x')

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Could you post a sample? –  Blender Sep 18 '12 at 5:59
    
Edited to include a sample –  mercador Sep 18 '12 at 6:02
7  
...what the hell?? –  Mu Mind Sep 18 '12 at 6:05
    
are you sure your syntax is in format re.sub(substring_to_be_replaced, new_string, Orignal_string, count) –  avasal Sep 18 '12 at 6:34

2 Answers 2

count can help you here:

In [9]: re.sub ?
Type:       function
Base Class: <type 'function'>
String Form:<function sub at 0x00AC7CF0>
Namespace:  Interactive
File:       c:\python27\lib\re.py
Definition: re.sub(pattern, repl, string, count=0, flags=0)
Docstring:
Return the string obtained by replacing the leftmost
non-overlapping occurrences of the pattern in string by the
replacement repl.  repl can be either a string or a callable;
if a string, backslash escapes in it are processed.  If it is
a callable, it's passed the match object and must return
a replacement string to be used.


In [13]: a = "bbbbbbb"

In [14]: x = re.sub('b', 'a', a, count=3)

In [15]: x
Out[15]: 'aaabbbb'
share|improve this answer
    
I do not see how it can help here; try the regex from my post with any count argument. From Python docs: The optional argument count is the maximum number of pattern occurrences to be replaced –  mercador Sep 18 '12 at 6:14
    
@mercador: Adding in a count keyword to your monstrosity of a regex does nothing to make my fans slow down. –  Blender Sep 18 '12 at 6:20
    
@mercador: count will stop re.sub after a fixed number of iterations.. which is you question... –  avasal Sep 18 '12 at 6:34

Other than analyzing the regex for the potential of catastrophic backtracking (a hard problem with an external regex) or using a different regex engine that does not allow backtracking, I think the only way is with a timeout of this nature:

import re
import signal

class Timeout(Exception): 
    pass 

def try_one(pat,rep,s,t=3):
    def timeout_handler(signum, frame):
        raise Timeout()

    old_handler = signal.signal(signal.SIGALRM, timeout_handler) 
    signal.alarm(t) 

    try: 
        ret=re.sub(pat, rep, s)

    except Timeout:
        print('"{}" timed out after {} seconds'.format(pat,t))
        return None

    finally:
        signal.signal(signal.SIGALRM, old_handler) 

    signal.alarm(0)
    return ret

try_one(r'^(.+?)\1+$', r'\1' ,"a" * 1000000 + "b")

Trying to replace a large repetitions of a single character (in this case one million 'a' characters) is a classic catastrophic regex failure. It would take tens of thousands of years to complete (at least with Python or Perl. Awk is different).

After 3 seconds of trying, it times out gracefully and prints:

"^(.+?)\1+$" timed out after 3 seconds
share|improve this answer
    
warning, signal.SIGALARM is platform dependent and doesn't play nicely in threaded environments –  wim Sep 18 '12 at 7:01
1  
@wim: Completely agreed -- a hard problem to solve otherwise tho... –  the wolf Sep 18 '12 at 7:07
    
@the wolf: This works on Python 2.5+, but does not work on Python 2.4. On 2.4, when re.sub(r'^(.+?)\1+$', r'\1' ,"a" * 1000000 + "b") is executing, signal.SIGALARM seems to be ignored by the process. Is there a way to make it work on 2.4? –  mercador Sep 20 '12 at 1:38
1  
@mercador: You stated Python 2.6 in your question... Python 2.4 is nearly 9 years old. Perhaps it is safe to assume a newer version? –  the wolf Sep 20 '12 at 5:39
    
@the wolf: Yes, I did state Python 2.6. It turns out that two of our machines still have Python 2.4, and upgrading them would be a big ordeal now. They will be simply decommissioned at some point together with their Python 2.4. What I do not understand is that Python 2.4 has signal.alarm(), and it works, except that when you schedule an alarm and then run a single CPU intensive operation (like re.sub), the signal handler does not get called. If run a while loop instead, it does get called. Why is that? This behavior is different from 2.5 and 2.6, but does not seem to be documented? –  mercador Sep 20 '12 at 6:42

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