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Trying to understand regular expressions and I am on the repetitions part: {m, n}.

I have this code:

>>> p = re.compile('a{1}b{1, 3}')
>>> p.match('ab')
>>> p.match('abbb')

As you can see both the strings are not matching the pattern. Why is this happening?

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6 Answers 6

up vote 9 down vote accepted

You shouldn't put a space after the comma, and the {1} is redundant.

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I have accepted your answer as it mentioned the {1} part also. Thanks. –  user225312 Feb 12 '11 at 15:26
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Try

p = re.compile('a{1}b{1,3}')

...and mind the space.

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Wow, I would have never thought that this could cause a problem. –  user225312 Feb 12 '11 at 15:14
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Remove the extra whitespace in b.

Change:

p = re.compile('a{1}b{1, 3}')

to:

p = re.compile('a{1}b{1,3}')
                        ^   # no whitespace

and all should be well.

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Do not insert spaces between { and }.

p = re.compile('a{1}b{1,3}')
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You can compile the regex with VERBOSE flag, this means most whitespace in the regex would be ignored. I think this is a very good practice to describe complex regular expressions in a more readable manner.

See here for details...

Hope this helps...

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+1 for the verbose flag tip. –  arthurprs Feb 12 '11 at 15:50
1  
-1 Firstly, "all whitespace in the regex would be ignored" -- this is quite untrue; a literal space can be included by doing e.g. [ ]. Secondly, the OP's regex does NOT start behaving as he expected merely by using the VERBOSE flag; his regex needs to change -- see my answer. –  John Machin Feb 12 '11 at 20:30
    
@John: thanks for pointing out the error and thanks for the bug report too... I have edited my answer. –  Gowtham Feb 13 '11 at 11:04
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You are seeing some re behaviour that is very "dark corner", nigh on a bug (or two).

# Python 2.7.1
>>> import re
>>> pat = r"b{1, 3}\Z"
>>> bool(re.match(pat, "bb"))
False
>>> bool(re.match(pat, "b{1, 3}"))
True
>>> bool(re.match(pat, "bb", re.VERBOSE))
False
>>> bool(re.match(pat, "b{1, 3}", re.VERBOSE))
False
>>> bool(re.match(pat, "b{1,3}", re.VERBOSE))
True
>>>

In other words, the pattern "b{1, 3}" matches the literal text "b{1, 3}" in normal mode, and the literal text "b{1,3}" in VERBOSE mode.

The "Law of Least Astonishment" would suggest either (1) the space in front of the 3 was ignored and it matched "b", "bb", or "bbb" as appropriate [preferable] or (2) an exception at compile time.

Looking at it another way: Two possibilities: (a) The person who writes "{1, 3}" is imbued with the spirit of PEP8 and believes it is prescriptive and applies everywhere (b) The person who writes that has tested re undocumented behaviour and actually wants to match the literal text "b{1, 3}" and perversely wants to use r"b{1, 3}" instead of explicitly escaping: r"b\{1, 3}". Seems to me that (a) is much more probable than (b), and re should act accordingly.

Yet another perspective: When the space is reached, it has already parsed {, a string of digits, and a comma i.e. well into the {m,n} "operator" ... to silently ignore an unexpected character and treat it as though it was literal text is mind-boggling, perlish, etc.

Update Bug report lodged.

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