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import java.util.regex.Pattern;

class HowEasy {
    public boolean matches(String regex) {
        System.out.println(Pattern.matches(regex, "abcABC   "));
        return Pattern.matches(regex, "abcABC");
    }

    public static void main(String[] args) {
        HowEasy words = new HowEasy();
        words.matches("[a-zA-Z]");
    }
}

The output is False. Where am I going wrong? Also I want to check if a word contains only letters and may or maynot end with a single period. What is the regex for that?

i.e "abc" "abc." is valid but "abc.." is not valid.

I can use indexOf() method to solve it, but I want to know if it is possible to use a single regex.

share|improve this question
up vote 19 down vote accepted

"[a-zA-Z]" matches only one character. To match multiple characters, use "[a-zA-Z]+".

Since a dot is a joker for any character, you have to mask it: "abc\." To make the dot optional, you need a question mark: "abc\.?"

If you write the Pattern as literal constant in your code, you have to mask the backslash:

System.out.println ("abc".matches ("abc\\.?"));
System.out.println ("abc.".matches ("abc\\.?"));
System.out.println ("abc..".matches ("abc\\.?"));

Combining both patterns:

System.out.println ("abc.".matches ("[a-zA-Z]+\\.?"));

Instead of a-zA-Z, \w is often more appropriate, since it captures foreign characters like äöüßø and so on:

System.out.println ("abc.".matches ("\\w+\\.?"));   
share|improve this answer
    
You are right about [a-zA-Z]+ now it matches only letters. Actually the second expression should be "abc\\.?" (in eclipse) – user244333 Oct 23 '11 at 13:28
    
in eclipse is not the point. You can input a pattern from file, from command line, from an JTextField, opposed to a literal constant in the source code - that makes the difference. I mentioned it while editing (mask the backslash). Thanks anyhow. – user unknown Oct 23 '11 at 13:37

[A-Za-z ]* to match letters and spaces.

share|improve this answer

matches method performs matching of full line, i.e. it is equivalent to find() with '^abc$'. So, just use Pattern.compile("[a-zA-Z]").matcher(str).find() instead. Then fix your regex. As @user unknown mentioned your regex actually matches only one character. You probably should say [a-zA-Z]+

share|improve this answer

Three problems here:

  1. Just use String.matches() - if the API is there, use it
  2. In java "matches" means "matches the entire input", which IMHO is counter-intuitive, so let your method's API reflect that by letting callers think about matching part of the input as your example suggests
  3. You regex matches only 1 character

I recommend you use code like this:

public boolean matches(String regex) {
    regex = "^.*" + regex + ".*$"; // pad with regex to allow partial matching
    System.out.println("abcABC   ".matches(regex));
    return "abcABC   ".matches(regex);
}

public static void main(String[] args) {
    HowEasy words = new HowEasy();
    words.matches("[a-zA-Z]+"); // added "+" (ie 1-to-n of) to character class
}
share|improve this answer

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