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Try this code.

test = ' az z bz z z stuff z  z '
re.sub(r'(\W)(z)(\W)', r'\1_\2\3', test)

This should replace all stand-alone z's with _z

However, the result is:

' az _z bz _z z stuff _z _z '

You see there's a z there that is missing. I theorize that it's because the grouping can't grab the space between the z's to match two z's at once (one for trailing whitespace, one for leading whitespace). Is there a way to fix this?

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what is the expected result? –  satoru Nov 28 '10 at 5:51

4 Answers 4

up vote 4 down vote accepted

The reason why it does that is that you get an overlapping match; you need to not match the extra character - there are two ways you can do this; one is using \b, the word boundary, as suggested by others, the other is using a lookbehind assertion and a lookahead assertion. (If reasonable, as it should probably be, use \b instead of this solution. This is mainly here for educational purposes.)

>>> re.sub(r'(?<!\w)(z)(?!\w)', r'_\1', test)
' az _z bz _z _z stuff _z  _z '

(?<!\w) makes sure there wasn't \w before.

(?!\w) makes sure there isn't \w after.

The special (?...) syntax means they aren't groups, so the (z) is \1.


As for a graphical explanation of why it fails:

The regex is going through the string doing replacement; it's at these three characters:

' az _z bz z z stuff z  z '
          ^^^

It does that replacement. The final character has been acted upon, so its next step is approximately this:

' az _z bz _z z stuff z  z '
              ^^^ <- It starts matching here.
             ^ <- Not this character, it's been consumed by the last match
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If your goal is to make sure you only match z when it's a standalone word, use \b to match word boundaries without actually consuming the whitespace:

>>> re.sub(r'\b(z)\b', r'_\1', test)
' az _z bz _z _z stuff _z  _z '
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+1, you just beat me (and a couple of others) to it. –  Johnsyweb Nov 28 '10 at 6:00

You want to avoid capturing the whitespace. Try using the 0-width word break \b, like this:

re.sub(r'\bz\b', '_z', test)
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Use this:

test = ' az z bz z z stuff z  z '
re.sub(r'\b(z)\b', r'_\1', test)
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