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I am developing a java app, running on android. I am trying to pick all words which do not contain any embedded digits or symbols.

The best I have come up with is:

\b[a-zA-Z]+[a-zA-Z]*+\b

Test Data:

this is a test , an0ther gr8 WW##ee one, w1n 1test test1 end

This results in picking the following: this, is, a, test, WW##ee, one, end

I need to eliminate the WW##ee from the results.

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You shouldn't use a word boundary meta-character \b since it matches the position right after WW which sees a hash # character. This position is a word boundary itself. So you should pick up a different way:

(?<![\S&&[^,]])[a-zA-Z]+(?![\S&&[^,]])

Using character class intersection feature of Java's regex you are able to define punctuation characters that are allowed to follow or precede a word character. Here it is a comma ,.

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You could use look behind and look ahead to check there is no #.

\b(?<!\#)[a-zA-Z]+(?!\#)\b
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My solution has evolved a bit as I have gotten additional help with this. So, this is now my best solution but still a bit lacking. I have not been able to accept "as-is" while rejecting "-this-" and a similar case of accept "and/or" while rejecting "/slash/". Also for simplicity I have made the input data single word per line.

^(?:[\p{P}\p{S}])?((?:[\p{L}\p{Pd}'])+)(?:[\p{P}\p{S}])$

as-is is picked valid

-this- is valid but I wish it weren't

and/or is not valid but I wish it would be picked

/slash/ "slash" is picked valid

(test) "test" is picked valid

[test] "test" is picked valid

<test> "test" is picked valid

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