4

Here is the example:

a = "one two three four five six one three four seven two"
m = re.search("one.*four", a)

What I want is to find the substring from "one" to "four" that doesn't contain the substring "two" in between. The answer should be: m.group(0) = "one three four", m.start() = 28, m.end() = 41

Is there a way to do this with one search line?

6

You can use this pattern:

one(?:(?!two).)*four

Before matching any additional character we check we are not starting to match "two".

Working example: http://regex101.com/r/yY2gG8

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  • 1
    So we can use (?:(?!two).)* like it's a multi-character version of ^, right? – satoru Nov 3 '13 at 6:13
  • If I understand it correctly, this regexp reads "Between one and four, there should be zero or more group of characters that don't start with two." – satoru Nov 3 '13 at 6:15
  • @Satoru.Logic - That's right. Another option is (?:[^t]|t[^w]|tw[^o])*, which is compatible with regex flavors without advanced features (lookahead). – Kobi Nov 3 '13 at 6:15
  • 1
    @Kobi, (?:[^t]|t[^w]|tw[^o])* isn't quite right, because it can consume characters that should be matched by what follows. For example, one(?:[^t]|t[^w]|tw[^o])*four doesn't match onetwfour - the f in the string is consumed by [^o]. – Tim Peters Nov 3 '13 at 6:36
  • 1
    @TimPeters - Excellent point. I can't think of a good solution except also disallowing four, which would be too messy. Lets stay with the lookahead, as Satoru suggested... – Kobi Nov 3 '13 at 6:40
1

With the harder string Satoru added, this works:

>>> import re
>>> a = "one two three four five six one three four seven two"
>>> re.findall("one(?!.*two.*four).*four", a)
['one three four']

But - someday - you're really going to regret writing tricky regexps. If this were a problem I needed to solve, I'd do it like this:

for m in re.finditer("one.*?four", a):
    if "two" not in m.group():
        break

It's tricky enough that I'm using a minimal match there (.*?). Regexps can be a real pain :-(

EDIT: LOL! But the messier regexp at the top fails yet again if you make the string harder still:

a = "one two three four five six one three four seven two four"

FINALLY: here's a correct solution:

>>> a = 'one two three four five six one three four seven two four'
>>> m = re.search("one([^t]|t(?!wo))*four", a)
>>> m.group()
'one three four'
>>> m.span()
(28, 42)

I know you said you wanted m.end() to be 41, but that was incorrect.

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  • 1
    The second version - one.*?four with a filter - will fail for "one two one five four". There must be an elegant solution that just captures one four and two, and takes the right pairs. Python should be a good language for such solutions, but I don't know it too well... – Kobi Nov 3 '13 at 6:13
0

You can use the negative lookahead assertion (?!...):

re.findall("one(?!.*two).*four", a)
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  • It works for his specific string, but not if you append " two" to his specific string - the lookahead applies to the entire remainder of the string, not just up until it finds the rightmost "four". – Tim Peters Nov 3 '13 at 5:34
  • That's awesome! It's awkward looking for some of these things. I didn't even know how to properly search for an answer. Thanks! – Solaris Nov 3 '13 at 5:44
  • 1
    @user2948379, note that Satoru edited your question to make it harder (added " two" to the end of your string), and the answer now doesn't find any matches (for the reason I explained in my comment above). This is still harder than it looks ;-) – Tim Peters Nov 3 '13 at 5:46
  • @TimPeters I'm wondering if there is a simple way to check if a pattern is solvable using Regex ;p – satoru Nov 3 '13 at 5:53
  • @user2948379 Is it possible for a trailing two to occur in your inputs? If this is not the case, feel free to remove the two I added to your example and sorry about that. – satoru Nov 3 '13 at 5:56
0

another one liner with a very simple pattern

import re
line = "one two three four five six one three four seven two"

print [X for X in [a.split()[1:-1] for a in 
                     re.findall('one.*?four', line, re.DOTALL)] if 'two' not in X]

gives me

>>> 
[['three']]
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