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I want to check if a userInput is free from special characters, here is my code:

public class ValidateHelper {

public boolean userInputContainsNoSpecialCharacters(String input){

        Pattern p = Pattern.compile("[a-zA-Z_0-9 ]");
        Matcher m = p.matcher(input);
        boolean b = m.matches();

        if (b)
            return true;
        else
            return false;
}

}

This works if I type one character in a textfield -> "a" in the textfield -> the method returns true "ab" in the textfield -> method returns false. can somebody help please? beste regards Daniel

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5 Answers 5

up vote 3 down vote accepted

Pattern p = Pattern.compile("[a-zA-Z_0-9 ]+");

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It works! Thanks to all of you guys for the rapid help! –  dan Aug 3 '11 at 17:27

Change "[a-zA-Z_0-9 ]" to "[a-zA-Z_0-9 ]+"

The + matches "one or more" of that group.

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That is because you are using the character class []. If you would like to capture a limited amount, any amount or a range of characters you need to modify it.

[a-zA-Z_0-9 ]+ //1 or more characters
[a-zA-Z_0-9 ]{1,5} //1 - 5 characters
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You should use the following regex:

[A-Za-z0-9]+
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You forgot the space the OP has in his regex –  CaffGeek Aug 3 '11 at 17:01
    
Good call, my mistake –  hspain Aug 3 '11 at 17:54

change your pattern from [a-zA-Z_0-9 ] to ^[a-zA-Z_0-9 ]*$ (for 0 or more valid characters) or ^[a-zA-Z_0-9 ]+$ if you want to ensure they enter a value

A + indicates 1 or more repetitions.

A * indicates 0 or more repetitions.

The ^ and $ denote the start end of the line respectively.

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