10
if("test%$@*)$(%".matches("[^a-zA-Z\\.]"))
    System.exit(0);

if("te/st.txt".matches("[^a-zA-Z\\.]"))
    System.exit(0);

The program isn't exiting even though the regexes should be returning true. What's wrong with the code?

4
  • 2
    If you think it should be returning true, your regex is not doing what you think it's doing. Please tell us what you think it should be doing so we can tell you where you've gone wrong. Nov 23, 2013 at 17:30
  • Another wild guess here. But are you meaning to use ^ to mean the begining of the line? If so you are doing it wrong.
    – Sanchit
    Nov 23, 2013 at 17:35
  • ever tried 'if(matcher.find() == true) return matcher.group(0);'
    – Pwnstar
    Jul 13, 2017 at 12:45
  • This behavior of Java's String.matches() does not seem intuitive because in Perl you can do perl -e '$target_str = "the string"; print $target_str =~ /the/' and the match is positive. The command returns 1, which equates to true. This is something that always gets me in Java and I have to keep referring to support to remember how String.matches() works in Java. Oct 6, 2019 at 2:10

3 Answers 3

19

matches returns true only if regex matches entire string.

In your case your regex represents only one character that is not a-z, A-Z or ..

I suspect that you want to check if string contains one of these special characters which you described in regex. In that case surround your regex with .* to let regex match entire string. Oh, and you don't have to escape . inside character class [.].

if ("test%$@*)$(%".matches(".*[^a-zA-Z.].*")) {
    //string contains character that is not in rage a-z, A-Z, or '.'

BUT if you care about performance you can use Matcher#find() method which

  1. can return true the moment it will find substring containing match for regex. This way application will not need to check rest of the text, which saves us more time the longer remaining text is.

  2. Will not force us to constantly build Pattern object each time String#matches(regex) is called, because we can create Pattern once and reuse it with different data.

Demo:

Pattern p = Pattern.compile("[^a-zA-Z\\.]");

Matcher m = p.matcher("test%$@*)$(%");
if(m.find())
    System.exit(0);

//OR with Matcher inlined since we don't really need that variable
if (p.matcher("test%$@*)$(%").find())
    System.exit(0);
13

x.matches(y) is equivalent to

Pattern.compile(y).matcher(x).matches()

and requires the whole string x to match the regex y. If you just want to know if there is some substring of x that matches y then you need to use find() instead of matches():

if(Pattern.compile("[^a-zA-Z.]").matcher("test%$@*)$(%").find())
    System.exit(0);

Alternatively you could reverse the sense of the test:

if(!"test%$@*)$(%".matches("[a-zA-Z.]*"))

by providing a pattern that matches the strings that are allowed rather than the characters that aren't, and then seeing whether the test string fails to match this pattern.

1
  • Accurate, concise and complete. Nice job. +1 Nov 23, 2013 at 19:01
2

You obtain always false because the matches() method returns true only when the pattern matches the full string.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.