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How do I match only words of character length one? Or do I have to check the length of the match after I performed the match operation? My filter looks like this:

sw = r'\w+,\s+([A-Za-z]){1}

So it should match

rs =re.match(sw,'Herb, A')

But shouldn't match

rs =re.match(sw,'Herb, Abc')
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2 Answers 2

up vote 2 down vote accepted

If you use \b\w\b you will only match one character of type word. So your expression would be

sw = r'\w+,\s+\w\b'

(since \w is preceded by at least one \s you don't need the first \b)

Verification:

>>> sw = r'\w+,\s+\w\b'
>>> print re.match(sw,'Herb, A')
<_sre.SRE_Match object at 0xb7242058>
>>> print re.match(sw,'Herb, Abc')
None
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Now I'm remembering reading about word boundaries...once upon a time...Thanks. –  LarsVegas Oct 1 '12 at 13:45

You can use

(?<=\s|^)\p{L}(?=[\s,.!?]|$)

which will match a single letter that is preceded and followed either by a whitespace character or the end of the string. The lookahead is a little augmented by punctuation marks as well ... this all depends a bit on your input data. You could also do a lookahead on a non-letter, but that begs the question whether “a123” is really a one-letter word. Or “I'm”.

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wuw..I see some lookbehind assertion, some grouping, a class,...but this like over complicating things a bit. –  LarsVegas Oct 1 '12 at 13:54
    
It won't trip over numbers or underscores, as opposed to the \w variant. It will definitely match only letters. And it's Unicode-aware, whereas with \w that's always a little hit-or-miss, depending on the engine. –  Joey Oct 1 '12 at 13:58
    
Good that you point that out. Maybe you should update your answer. I was actually going to use [A-Za-z]-class which will rule out the numbers and underscores. –  LarsVegas Oct 1 '12 at 14:04

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