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So far I have put together this:


I am trying to catch whole words that are censored: I.E. d*mn or d_mn but don't want & or 't 's 're to match and also need to make it so that numbers like 1.23 are not matched.

My goal is to catch people trying to slip swear words in by using symbols in place of letters. So any word with a symbol should be caught except for things like apostrophes. The & symbol is a formatting thing and there can be one per letter max. So ' and & are ok to be used. Numbers with decimals should work as they are not swear words. Things like s**t and d_mn or etc should be caught.

I need help with the number part.

I tried ^\d.\d for not digit dot digit but that didn't work for me.

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Your original RegEx seems to work (\b\S*[^\w\s^'^&]\S*\b)... Or do you mean it shouldn't match d*mn't? –  Grinn Jan 22 '13 at 19:42
Hi. It should match d*mn't but not 1.20 yet it does. Also it doesn't catch d_mn. –  user2001545 Jan 22 '13 at 19:48
I added a revision to your question then. You didn't indicate that you want to match d_mn, and it was unclear (at least to me) that you didn't want to match 1.23. –  Grinn Jan 22 '13 at 19:57
You probably need to allow periods, outright - otherwise you'll catch periods at the ends of sentences and if not that, then when someone forgets to put a period at the end of a sentence.Like this. –  Grinn Jan 22 '13 at 20:12
I tried .*?\b\S*[^\w\s^'&^(\d(?:\.\d{1,3})?]\S*\b.*? and it seems to work for me. –  user2001545 Jan 29 '13 at 16:40

2 Answers 2

up vote 0 down vote accepted

How about using this one:

  • \p{L} is any (unicode) letter
  • \p{S} is any symbol
  • \p{P} is any punctuation

The first part of the pattern (\p{L}*[\p{S}\p{P}]) ensures that the word must contain at least one symbol or punctuation. The rest of the pattern ((\p{L}[\p{P}\p{S}])|([\p{P}\p{S}]\p{L})|(\p{L}))+ specifies how things can repeat. Sequences of a letter followed by a punctuation/symbol, a punctuation/symbol followed by a letter, or a letter alone are acceptable.

To use this pattern in Java code make sure you first replace all backslash characters with double backslashes.

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I copied this in to and tried a string like This is a test of version 1.2.3 and h*pefully it works. if it doesn't that's not good! c**p and it did not catch anything. –  user2001545 Jan 23 '13 at 14:27
@user2001545 Unfortunately it seems that JavaScript does not support \p symbols. Since you are using Java as your language please test against a Java regex tester such as: –  Sina Iravanian Jan 24 '13 at 22:23
I tried .*?\b\S*[^\w\s^'&^(\d(?:\.\d{1,3})?]\S*\b.*? and it seems to work for me. Except for words like SO that's not so great. –  user2001545 Jan 29 '13 at 16:49
Hey Sina yours works well. Thanks for the link too. Lemme test in Eclipse... Nope sorry it catches apostrophes that are normal in text. –  user2001545 Jan 29 '13 at 16:51
How do I change the \p{S} to add in ' and & symbol negation? –  user2001545 Jan 29 '13 at 17:25

Here's my tentative answer:


Using [a-zA-Z] instead of \S no longer includes numbers.

EDIT: It now requires that the word end in a letter. I also made it so it will match repeated special characters, like in a$$hole.

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Thanks. I tried this and it didn't catch anything. The one I had didn't have issues with periods or question marks at the end of sentences. –  user2001545 Jan 22 '13 at 20:19
What language is this in? JavaScript? ...and you're right, it doesn't catch the period at the end of a sentence because it would be a word boundary. My bad. It would catch it in the middle though. –  Grinn Jan 22 '13 at 20:21
I am using Java. –  user2001545 Jan 22 '13 at 20:27
Would it even be possible to distinguish between the end of a sentence and a word with a full stop at the end? –  Tharwen Jan 22 '13 at 20:29
Huh. I'm testing this with Java. Well, a Regex parser that lets me specify the parsing language as Java. You're certain it didn't match anything? –  Grinn Jan 22 '13 at 20:34

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