3

Is there a one liner to replace the while loop?

String formatSpecifier = "%(\\d+\\$)?([-#+ 0,(\\<]*)?(\\d+)?(\\.\\d+)?([tT])?([a-zA-Z%])";
Pattern pattern = Pattern.compile(formatSpecifier);
Matcher matcher = pattern.matcher("hello %s my name is %s");

// CAN BELOW BE REPLACED WITH A ONE LINER?
int counter = 0;
while (matcher.find()) {
    counter++;
}
  • 2
    Umm, you are matching on the literal String "infile.txt" - it doesn't read from a file for you. – Elliott Frisch Sep 5 '17 at 5:18
  • @ElliottFrisch, I updated the question with a better example. – Jenna Kwon Sep 5 '17 at 5:21
  • Any reason for needing a one-liner, given the original code is just 3-4 lines which is short and easy to read? – Adrian Shum Sep 5 '17 at 6:00
  • Not in Java 8 if you need the same performance. But you may in Java 9. Why not write a separate method and call it as a one-liner? – Wiktor Stribiżew Sep 5 '17 at 7:04
2

Personally I don't see any reason to aim for one-liner given the original code is already easy to understand. Anyway, several ways if you insists:

1. Make a helper method

make something like this

static int countMatches(Matcher matcher) {
  int counter = 0;
  while (matcher.find())
    counter++;
  return counter;
}

so your code become

int counter = countMatches(matcher);

2. Java 9

Matcher in Java 9 provides results() which returns a Stream<MatchResult>. So your code becomes

int counter = matcher.results().count();

3. String Replace

Similar to what the other answer suggest.

Here I am replacing with null character (which is almost not used in any normal string), and do the counting by split:

Your code become:

int counter = matcher.replaceAll("\0").split("\0", -1).length - 1;
0

Yes: replace any occurrence by a char that can be neither in the pattern nor in the string to match, then count the number of occurrences of this char. Here I choose X, for the example to be simple. You should use a char not so often used (see UTF-8 special chars for instance).

final int counter = pattern.matcher("hello %s my name is %s").replaceAll("X").replaceAll("[^X]", "").length();

Value computed for counter is 2 with your example.

  • You would need a difference in length. But even then, the bigger issue is that for a regex pattern like (?*?) we don't know the width of each replacement in advance. – Tim Biegeleisen Sep 5 '17 at 5:31
  • Your regex pattern does not work when inserted in the original question (throws java.util.regex.PatternSyntaxException). I do not see why a difference? Can you give an example that works with the code in the original question and for which my answer does not work, please ? (format specifier and string to match) – Alexandre Fenyo Sep 5 '17 at 5:35
  • @Alexandre "XXX". – Andy Turner Sep 5 '17 at 5:49
  • As I've written in my answer, X is only for the example to be simple: you should use a char not so often used (this is why I talked about UTF-8 special chars). Of course, if you choose a char that is Inside the pattern or the string to match, it can not work correctly. – Alexandre Fenyo Sep 5 '17 at 5:53

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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