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Given a java.lang.String instance, I want to verify that it doesn't contain any unicode characters that are not ASCII alphanumerics. e.g. The string should be limited to [A-Za-z0-9.]. What I'm doing now is something very inefficient:

import org.apache.commons.lang.CharUtils;

String s = ...;
char[] ch = s.toCharArray();
for( int i=0; i<ch.length; i++)
{
    if( ! CharUtils.isAsciiAlphanumeric( ch[ i ] )
        throw new InvalidInput( ch[i] + " is invalid" );
}

Is there a better way to solve this ?

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3 Answers 3

up vote 3 down vote accepted

You can use

input.matches("[A-Za-z0-9.]+")
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No, that should be !input.matches("[^A-Za-z0-9.]"). –  Christoffer Hammarström Apr 29 '10 at 9:51
    
depends on your if/else structure.. –  Bozho Apr 29 '10 at 10:02
    
input.matches("[A-Za-z0-9.]") means the string is exactly one character long. The regex should be [A-Za-z0-9.]+, or [A-Za-z0-9.]* if a zero-length string is allowed. –  Alan Moore May 1 '10 at 21:32
    
thanks, correct. –  Bozho May 2 '10 at 6:37

Try this:

private boolean isBasicLatin(String input)
{
    for (char c : input.toCharArray())
    {
        if (!UnicodeBlock.BASIC_LATIN.equals(UnicodeBlock.of(c)))
        {
            return false;
        }
    }

    return true;
}
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Yes, there's a better way to solve that. You already have written the pattern, so why don't you use a regular expression to validate it? Instead of throwing an exception that includes the invalid character you could just aswell use a generic error message saying something along the lines of "input contains invalid characters (valid characters are a-z and 0-9)".

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