4

With Python's re module, why do the following act differently:

>>> r = re.compile(r'[][]')
>>> r.findall(r'[]')
['[', ']']
>>> r = re.compile(r'[[]]')
>>> r.findall(r'[]')
['[]']
>>> r.findall(r'][')
[]
2
  • I made a slight change to the example code (moving the string-to-match from s=".." to the findall argument, so it's a bit clearer), and pointed out [][] and [[]] produce different results. Also removed the python tag from the title as it's a bit redundant given the tag – dbr Mar 7 '09 at 10:03
  • That it's Python is important information, though; regex flavors vary wildly on how they deal with square brackets in character classes. In Java, both of those regexes would result in PatternSyntaxExceptions. – Alan Moore Mar 8 '09 at 0:05
16

The regular expression "[[]]" matches the substring "[]". The first [ in the expression begins a character class, and the first ] ends it. There is only one character ([) in the class, and then it has to be followed by the second ]. So the expression is "any of the characters in "[", followed by a "]".

0
4

Character classes begin with a [ and end with the first ].

So the expression [][] is a character class with the characters ] and [ as character classes must not be empty: [][]
And the expression [[]] is a character class with just [ and the single character ] after that: [[]]

0

and r'[][]' forms a character class {'[',']'}, and match either '[' or ']'.

2
  • Nope, that defines two empty character classes, r'[a][b]' for example wont match a][b, it'll match a, then b – dbr Mar 7 '09 at 9:57
  • You’re right. r'[][]' form a character class containing ']' and '[' as character classes must not be empty. – Gumbo Mar 7 '09 at 10:16

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