3
r'(^|^A)(\S+)(B$|$)'

results to matches everything, which actually equals to ^\S$.

How to write one matches "begins with A or ends with B, may both but not neither?"

PS: I also need refer to group (\S+) in the substring module.

Example:

Match Aanything, anythingB, and refer anything group in the replace.

  • Is that a Python regex? – BoltClock Oct 18 '10 at 7:42
  • ASDF -> SDF, SDFB -> SDF, but ASDFB -> SDFB or SDF? – mykhal Oct 18 '10 at 7:55
  • So it's a Python regex. Please tag the language you're using as different languages implement different regex flavors, and regexes provided in other languages may not be compatible with Python's regex engine. – BoltClock Oct 18 '10 at 7:59
  • thanks, problem solved. this is my first time posting in stackoverflow. – BOYPT Oct 18 '10 at 8:04
3
(^A.*B$)|(^A.*$)|(^.*B$)
  • 1
    yes this matches but don't know which group in the replace part? – BOYPT Oct 18 '10 at 7:40
  • 1
    You can leave away the grouping of the alternatives, thanks to the precedence of the "|" operator, but would want to capture the relevant substring. This leaves you with ^A(\S*)B$|^A(\S*)$|(\S*)B$. The ugly thing here is that now you get the desired substring in one of three match groups, and you don't know which in advance. So you might want to use the 'max(match.groups())' approach of mykhal. – ThomasH Oct 18 '10 at 9:48
2

Is this the desired behavior?

var rx = /^((?:A)?)(.*?)((?:B)?)$/;
"Aanything".match(rx)
> ["Aanything", "A", "anything", ""]
"anythingB".match(rx)
> ["anythingB", "", "anything", "B"]
"AanythingB".match(rx)
> ["AanythingB", "A", "anything", "B"]
"anything".match(rx)
> ["anything", "", "anything", ""]
"AanythingB".replace(rx, '$1nothing$3');
> "AnothingB"
"AanythingB".replace(rx, '$2');
> "anything"
  • This regex misses the "not neither" requirement of the OP. – ThomasH Oct 18 '10 at 9:07
2

^A|B$ or ^A|.*B$ (depending whether the match function is matching from the beginning)

UPDATE

it's difficult to write single regexp for this..

a possibility is:

match = re.match(r'^(?:A(\S+))|(?:(\S+)B)$', string)
if match:
    capture = max(match.groups())
# because match.groups() is either (capture, None) or (None, capture)
  • actually what I need is to get the (\S+) group patten, ^A|.*B$ match "A" "anythingB", but I need "anything" – BOYPT Oct 18 '10 at 7:28
1

try this:

/(^A|B$)/
  • While this matches at the right strings, it fails to capture the relevant substring, which is the actual difficulty here. – ThomasH Oct 18 '10 at 9:12
1

Problem solved.

I use this regex in python, I found this in the Python manual:

(?(id/name)yes-pattern|no-pattern) Will try to match with yes-pattern if the group with given id or name exists, and with no-pattern if it doesn’t. no-pattern is optional and can be omitted. For example, (<)?(\w+@\w+(?:.\w+)+)(?(1)>) is a poor email matching pattern, which will match with '' as well as 'user@host.com', but not with '

New in version 2.4.

So my final answer is:

r'(?P<prefix>A)?(?P<key>\S+)(?(prefix)|B)'

Commands:

>>>re.sub(r'(?P<prefix>A)?(?P<key>\S+)(?(prefix)|B)','\g<key>',"Aanything")

'anything'

>>>re.sub(r'(?P<prefix>A)?(?P<key>\S+)(?(prefix)|B)','\g<key>',"anythingB")

'anything'

While AanythingB give me anythingB back, but I don't care anyway.

>>>re.sub(r'(?P<prefix>A)?(?P<key>\S+)(?(prefix)|B)','\g<key>',"AanythingB")

'anythingB'

  • wouldn't be if re.match(r'^A\S+$', s): s = s[1:]; if re.match(r'^\S+B$', s): s = s[:-1] much simpler? – mykhal Oct 18 '10 at 8:07
  • 1
    your final answer has unbalanced parenthesis :) – mykhal Oct 18 '10 at 8:11
  • Shouldn't the condition be on A? Oh, it is on the samples, but not in the "final answer"... – Kobi Oct 18 '10 at 10:27
  • oh, i forgot to update the final answer line, done now. – BOYPT Oct 23 '10 at 13:48
  • A more complete regex would be r'(?P<prefix>A)?(?P<key>\S+?)(?(prefix)B?|B)$'. This way group('key') would be non-greedy and a B at the optional if there is an A at the beginning. So, 'AanythingB' would correctly capture 'anything' in key group. – dojuba Feb 24 '17 at 12:17
0

If you don't mind the extra weight in the case where both prefix "A" and suffix "B" exist, you can use a shorter regex:

reMatcher= re.compile(r"(?<=\AA).*|.*(?=B\Z)")

(using \A for ^ and \Z for $)

This one keeps the "A" prefix (instead of the "B" prefix of your solution) when both "A" and "B" are at their respective corners:

'A text here' matches ' text here'
'more text hereB' matches 'more text here'
'AYES!B' matched 'AYES!'
'neither' doesn't match

Otherwise, a non-regex solution (some would say a more “Pythonic” one) is:

def strip_prefix_suffix(text, prefix, suffix):
    left =  len(prefix) if text.startswith(prefix) else 0
    right= -len(suffix) if text.endswith(suffix) else None
    return text[left:right] if left or right else None

If there is no match, the function returns None to differentiate from a possible '' (e.g. when called as strip_prefix_suffix('AB', 'A', 'B')).

PS I should also say that this regex:

(?<=\AA).*(?=B\Z)|(?<=\AA).*|.*(?=B\Z)

should work, but it doesn't; it works just like the one I suggested, and I can't understand why. Breaking down the regex into parts, we can see something weird:

>>> text= 'AYES!B'
>>> re.compile('(?<=\\AA).*(?=B\\Z)').search(text).group(0)
'YES!'
>>> re.compile('(?<=\\AA).*').search(text).group(0)
'YES!B'
>>> re.compile('.*(?=B\\Z)').search(text).group(0)
'AYES!'
>>> re.compile('(?<=\\AA).*(?=B\\Z)|(?<=\\AA).*').search(text).group(0)
'YES!'
>>> re.compile('(?<=\\AA).*(?=B\\Z)|.*(?=B\\Z)').search(text).group(0)
'AYES!'
>>> re.compile('(?<=\\AA).*|.*(?=B\\Z)').search(text).group(0)
'AYES!'
>>> re.compile('(?<=\\AA).*(?=B\\Z)|(?<=\\AA).*|.*(?=B\\Z)').search(text).group(0)
'AYES!'

For some strange reason, the .*(?=B\\Z) subexpression takes precedence, even though it's the last alternative.

  • I've opened an issue in the Python bug tracker, since it's a possible bug in the re engine. – tzot Oct 19 '10 at 1:06

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