Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Given a string, and a character offset within that string, can I search backwards using a Python regular expression?

The actual problem I'm trying to solve is to get a matching phrase at a particular offset within a string, but I have to match the first instance before that offset.

In a situation where I have a regex that's one symbol long (ex: a word boundary), I'm using a solution where I reverse the string.

my_string = "Thanks for looking at my question, StackOverflow."
offset = 30
boundary = re.compile(r'\b')
end = boundary.search(my_string, offset)
end_boundary = end.start()
end_boundary

Output: 33

end = boundary.search(my_string[::-1], len(my_string) - offset - 1)
start_boundary = len(my_string) - end.start()
start_boundary

Output: 25

my_string[start_boundary:end_boundary]

Output: 'question'

However, this "reverse" technique won't work if I have a more complicated regular expression that may involve multiple characters. For example, if I wanted to match the first instance of "ing" that appears before a specified offset:

my_new_string = "Looking feeding dancing prancing"
offset = 16 # on the word dancing
m = re.match(r'(.*?ing)', my_new_string) # Except looking backwards

Ideal output: feeding

I can likely use other approaches (split the file up into lines, and iterate through the lines backwards) but using a regular expression backwards seems like a conceptually-simpler solution.

share|improve this question
    
Just FYI, \b matches (or, more accurately, consumes) zero characters, not one. –  Alan Moore Jun 20 '13 at 6:48

2 Answers 2

up vote 6 down vote accepted

Using positive lookbehind to make sure there are at least 30 characters before a word:

# re like: r'.*?(\w+)(?<=.{30})'
m = re.match(r'.*?(\w+)(?<=.{%d})' % (offset), my_string)
if m: print m.group(1)
else: print "no match"

For the other example negative lookbehind may help:

my_new_string = "Looking feeding dancing prancing"
offset = 16
m = re.match(r'.*(\b\w+ing)(?<!.{%d})' % offset, my_new_string)
if m: print m.group(1)

which first greedy matches any character but backtracks until it fails to match 16 characters backwards ((?<!.{16})).

share|improve this answer
    
Thanks for the lookbehind tip. I'm still trying to adapt your example so that I can "seek backwards" through the string for a longer expression. –  Irwin Jun 20 '13 at 1:23
    
(.*ing) as in my edited question - if I were to seek backwards for an entire word ending in -ing from an offset. –  Irwin Jun 20 '13 at 2:14
    
@Irwin, added a solution to that example –  perreal Jun 20 '13 at 2:28
    
Thank you very much! –  Irwin Jun 20 '13 at 16:08

We can make use of python's regex engine's preference for greediness (sort of, not really), and tell it that what we want is as many characters as possible, but no more than 30, then ....

An appropriate regex, then, can be r'^.{0,30}(\b)'. We want the start of the first capture.

>>> boundary = re.compile(r'^.{0,30}(\b)')
>>> boundary.search("hello, world; goodbye, world; I am not a pie").start(1)
30
>>> boundary.search("hello, world; goodbye, world; I am not").start(1)
30
>>> boundary.search("hello, world; goodbye, world; I am").start(1)
30
>>> boundary.search("hello, world; goodbye, pie").start(1)
26
>>> boundary.search("hello, world; pie").start(1)
17
share|improve this answer
    
+1. It works equally well for multi-character sequences; just change (\b) to (\b\w+\b). And you might want to adjust the limit to make sure the word starts before the cutoff, not right at it (e.g. {0,29} in this case). –  Alan Moore Jun 20 '13 at 6:44
    
oh, yes, that's an off-by-one to be aware of -- the regex I've given works for my statement of the problem, which is off by one, that is. –  res Jun 20 '13 at 18:20

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.