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Trying to create a pattern that matches an opening bracket and gets everything between it and the next space it encounters. I thought \[.*\s would achieve that, but it gets everything from the first opening bracket on. How can I tell it to break at the next space?

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In the end, I decided to go with ([\S*\S) and it worked wonderfully in every situation I threw at it. –  hyperflow Mar 12 '12 at 17:24

5 Answers 5

up vote 2 down vote accepted
\[[^\s]*\s

Regular expressions are mostly greedy, and will eat everything, including spaces, until the last space character.

Masking the opening bracket might be needed. If you negate the \s with ^\s, the expression should eat everything except spaces, and then a space, which means up to the first space.

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I noticed this also matches the text "[ " How can I make the pattern ignore it if the first character following the open bracket is a space? So "[thisisvalid" but "[ thisisignored" –  hyperflow Feb 17 '12 at 14:35
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Then you wouldn't use *, which means 'any number of ... - including zero' but +, which might or might not need escaping, and means 'at least once'. –  user unknown Feb 17 '12 at 14:39

You could use a reluctant qualifier:

[.*?\s

Or instead match on all non-space characters:

[\S*\s
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Use this:

\[[^ ]*

This matches the opening bracket (\[) and then everything except space ([^ ]) zero or more times (*).

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I suggest using \[\S*(?=\s).

  • \[: Match a [ character.
  • \S*: Match 0 or more non-space characters.
  • (?=\s): Match a space character, but don't include it in the pattern. This feature is called a zero-width positive look-ahead assertion and makes sure you pattern only matches if it is followed by a space, so it won't match at the end of line.

You might get away with \[\S*\s if you don't care about groups and want to include the final space, but you would have to clarify exactly which patterns need matching and which should not.

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You want to replace . with [^\s], this would match "not space" instead of "anything" that . implies

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