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How do I make a python regex like "(.*)" such that, given "a (b) c (d) e" python matches "b" instead of "b) c (d"?

I know that I can use "[^)]" instead of ".", but I'm looking for a more general solution that keeps my regex a little cleaner. Is there any way to tell python "hey, match this as soon as possible"?

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6 Answers 6

up vote 18 down vote accepted

You seek the all-powerful '*?'

http://docs.python.org/2/howto/regex.html#greedy-versus-non-greedy

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According to the Internet Archive, all that link pointed to was a copy of the Python "re" module docs, so Trey's link works just as well. –  spiffytech Jul 13 '12 at 16:01
    
The link works great for me. –  Benjamin Jul 3 '13 at 16:16
>>> x = "a (b) c (d) e"
>>> re.search(r"\(.*\)", x).group()
'(b) c (d)'
>>> re.search(r"\(.*?\)", x).group()
'(b)'

According to the docs:

The '*', '+', and '?' qualifiers are all greedy; they match as much text as possible. Sometimes this behavior isn’t desired; if the RE <.*> is matched against '<H1>title</H1>', it will match the entire string, and not just '<H1>'. Adding '?' after the qualifier makes it perform the match in non-greedy or minimal fashion; as few characters as possible will be matched. Using .*? in the previous expression will match only '<H1>'.

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Would not \\(.*?\\) work ? That is the non-greedy syntax.

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As the others have said using the ? modifier on the * quantifier will solve your immediate problem, but be careful, you are starting to stray into areas where regexes stop working and you need a parser instead. For instance, the string "(foo (bar)) baz" will cause you problems.

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Do you want it to match "(b)"? Do as Zitrax and Paolo have suggested. Do you want it to match "b"? Do

>>> x = "a (b) c (d) e"
>>> re.search(r"\((.*?)\)", x).group(1)
'b'
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Using an ungreedy match is a good start, but I'd also suggest that you reconsider any use of .* -- what about this?

groups = re.search(r"\([^)]*\)", x)
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