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Can somebody please show me how to do a Java regex that takes in a string and returns a string with all characters removed BUT a-z and 0-9?

I.e. given a string a%4aj231*9.+ it will return a4aj2319

thanks.

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3 Answers 3

up vote 1 down vote accepted

\d is digit, \p{L} is a-z and A-Z.

str.replaceAll("[^\\d\\p{L}]", "");
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thanks for the quick reply..I just realized, what if I want to preserve spaces as well? –  vbn Feb 18 '10 at 3:26
    
Just add any characters you don't want to replace within the square brackets. –  lins314159 Feb 18 '10 at 3:27
    
\p{L} also matches a ton of other Unicode characters, such as Δ, ね, and 傻. This expression will leave them all intact. –  Sean Feb 18 '10 at 4:13
str = str.replaceAll("[^a-z0-9]+", "");

If you also meant to include uppercase characters, then you could use

str = str.replaceAll("[^A-Za-z0-9]+", "");

or the slightly leeter

str = str.replaceAll("[_\\W]+", "");
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If you want a-z and 0-9 but not A-Z then

str.replaceAll("[^\\p{Lower}\\p{Digit}]", "");
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I didn't go with \w because that includes underscores as well. –  lins314159 Feb 18 '10 at 3:34
    
You are right, I'll change that –  Lombo Feb 18 '10 at 4:32

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