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I've got a regex issue, I'm trying to ignore just the number '41', I want 4, 1, 14 etc to all match.

I've got this [^\b41\b] which is effectively what I want but this also ignores all single iterations of the values 1 and 4.

As an example, this matches "41", but I want it to NOT match: \b41\b

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3 Answers 3

This is similar to the question "Regular expression that doesn’t contain certain string", so I'll repeat my answer from there:

^((?!41).)*$

This will work for an arbitrary string, not just 41. See my response there for an explanation.

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Your da man! Thanks –  Sydwell Sep 29 '12 at 13:05

You could use a negative look-ahead assertion to exclude 41:

/\b(?!41\b)\d+\b/

This regular expression is to be interpreted as: At any word boundary \b, if it is not followed by 41\b ((?!41\b)), match one or more digits that are followed by a word boundary.

Or the same with a negative look-behind assertion:

/\b\d+\b(?<!\b41)/

This regular expression is to be interpreted as: Match one or more digits that are surrounded by word boundaries, but only if the substring at the end of the match is not preceded by \b41 ((?<!\b41)).

Or can even use just basic syntax:

/\b(\d|[0-35-9]\d|\d[02-9]|\d{3,})\b/

This matches only sequences of digits surrounded by word boundaries of either:

  • one single digit
  • two digits that do not have a 4 at the first position or not a 1 at the second position
  • three or more digits
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Cheers guys, spot on –  Matt Mar 25 '10 at 15:11

Try something like:

\b(?!41\b)(\d+)

The (?!...) construct is a negative lookahead so this means: find a word boundary that is not followed by "41" and capture a sequence of digits after it.

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Cheers guys, spot on –  Matt Mar 25 '10 at 15:12

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