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Note: I'm using a 3rd party app that uses regex for searches which has its own flavor but almost always works like java's flavor of regex. Of course this may not matter.

After searching for many different ways of this same question (phrased many ways), I did not see any tutorials, examples, or even mentions of whether it is possible to use both an "is" (positive?) and "is not" (negative?) definition within the same range.

I can't run a test the example right now in the app to see if my ideas work, because the amount of data being searched is massive and will screw up the matches it has already gathered. I'm only asking because of this.

Here are examples of what I thought might work but caused tester to act weird:

[\w^\s<>.!?]{2}
[\w|^\s<>.!?]{2}

I would rather have it work the way I think the first one would work (any digit, lower case, or upper case character, or other normal character that is not a space, >, <, period, !, or ?) rather then the second which only has an or operator.

The regex testers I used gave me different funky results which is what is confusing me.

Also note: I'm using this within a capture group which is followed by a catch everything match which I may or may not be using properly. So if you'd like to include how to follow what I'm attempting with how to properly do that, feel free. I AM MAINLY JUST CURIOUS TO IF THIS WAS POSSIBLE OR NOT, OR IF IT WAS A IMPROPER METHOD.

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1  
FYI, the only operators that work inside character classes are ^ (only at the beginning) and - (except at the beginning). | is not an operator, it's just an ordinary character when inside [...]. –  Barmar Oct 8 '12 at 15:45
    
okay, thanks for the clarification –  Travis Dtfsu Crum Oct 8 '12 at 15:51

3 Answers 3

up vote 5 down vote accepted

Why do you need the \w at all?

[^\s<>.!?]{2}

This already matches all alphanumeric characters since they are neither space nor any of the punctuation characters you mentioned.

In general, you can substract character classes to some degree, for example, to match alphanumerics exluding digits, you can do

[^\W\d]

because [^\W] matches the same as \w, and \d is substracted from that because it's in a negated character class.

Edit:

Some regex engines (like XPath, .NET and JGSoft) allow flexible character class substraction like this:

[a-z-[e-g]]

to match any character from the range [a-z], excluding e, f and g. But Java does not have this feature.

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oh man, thank you. I would have never thought of that. Didn't even know that that was possible. –  Travis Dtfsu Crum Oct 8 '12 at 15:34
    
ummmmmmmm you're right. I think I did it because there were sometimes strange characters that I didn't want captured and it would have taken a while to add all the ones I didn't want –  Travis Dtfsu Crum Oct 8 '12 at 15:39
    
would have had to go through and check a ton of the matches to see which character it captured I didn't want. And new ones kept popping up after scanning through a ton –  Travis Dtfsu Crum Oct 8 '12 at 15:40

From your question, it looks like a no-space regex would match your needs, you can achieve that with:

[\S]{2}
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That would also match <>.!? which the OP doesn't want. –  Tim Pietzcker Oct 8 '12 at 15:38
    
he says he wants them: I would rather have it work the way I think the first one would work (any digit, lower case, or upper case character, or other normal character that is not a space, >, <, period, !, or ?) –  Tudor Constantin Oct 8 '12 at 15:57
    
"any...character that is not a space, >, <, period, !, or ?" –  Tim Pietzcker Oct 8 '12 at 15:59

Another possibility is to use two ranges and combine them; e.g.

([\w]|[^\s<>.!?]){2}

However, this does bring up the question of what you are actually trying to express here. Because this example (as I've rewritten it) doesn't make a lot of sense.

What it says is "a word character, or any character that is not whitespace or certain punctuation". But the class of characters that are not "whitespace or certain punctuation" ALREADY includes all of the word characters. So, unless you mean something different, the \w is redundant.

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check the comments in Tim Pietzcker's answer. I explained there –  Travis Dtfsu Crum Oct 8 '12 at 15:42
    
They don't explain ... see my last paragraph. –  Stephen C Oct 8 '12 at 16:14

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