21

I want to match a single word inside brackets(including the brackets), my Regex below is working but it's not returning me all groups.

Here's my code:

String text = "This_is_a_[sample]_text[notworking]";
Matcher matcher = Pattern.compile("\\[([a-zA-Z_]+)\\]").matcher(text);                                     
if (matcher.find()) {
    for (int i = 0; i <= matcher.groupCount(); i++) {
    System.out.println("------------------------------------");
    System.out.println("Group " + i + ": " + matcher.group(i));
}

Also I've tested it in Regex Planet and it seems to work.

It must return 4 groups:

------------------------------------
Group 0: [sample]
------------------------------------
Group 1: sample
------------------------------------
Group 2: [notworking]
------------------------------------
Group 3: notworking

But it's returning just it:

------------------------------------
Group 0: [sample]
------------------------------------
Group 1: sample

What's wrong?

0

4 Answers 4

26

JAVA does not offer fancy global option to find all the matches at once. So, you need while loop here

int i = 0;
while (matcher.find()) {
   for (int j = 0; j <= matcher.groupCount(); j++) {
      System.out.println("------------------------------------");
      System.out.println("Group " + i + ": " + matcher.group(j));
      i++;
   }
}

Ideone Demo

7
  • Hmm, I got it, my intention was to get the captured groups in reverse, in other words, from the last to the first, do you know a way to do this? Apr 29, 2016 at 18:25
  • @developer033 do you want sample and then [sample]?
    – rock321987
    Apr 29, 2016 at 18:26
  • I want notworking, [notworking], sample and [sample]. That's why I want collect all the captured groups, understand me now? Apr 29, 2016 at 18:27
  • 1
    @developer033 put all the results in an arraylist or array and reverse it..that will be most simple approach
    – rock321987
    Apr 29, 2016 at 18:28
  • 1
    Yes, I thought about using List before.. Thanks. Apr 29, 2016 at 18:34
9

Groups aren't thought to find several matches. They are thought to identify several subparts in a single match, e.g. the expression "([A-Za-z]*):([A-Za-z]*)" would match a key-value pair and you could get the key as group 1 and the value as group 2.

There is only 1 group (= one brackets pair) in your expression and therefore only the groups 0 (always the whole matched expression, independently of your manually defined groups) and 1 (the single group you defined) are returned.

In your case, try calling find iteratively, if you want more matches.

int i = 0;
while (matcher.find()) {
    System.out.println("Match " + i + ": " + matcher.group(1));
    i++;
}
1

Also if you know the amount of matches you will get, you can find groups and add them to list then just take values from list when needed to assigned them somewhere else

 public static List<String> groupList(String text, Pattern pattern) {
    List<String> list = new ArrayList<>();
    Matcher matcher = pattern.matcher(text);
    while (matcher.find()) {
        for (int i = 1; i <= matcher.groupCount(); i++) {
        list.add(matcher.group(i));
            }
        }
    return list;
0

If you know the exact amount of matching groups, with java 9 or later it could be done like this:

    String text = "This_is_a_[sample]_text[notworking]";
    Pattern pattern = Pattern.compile("\\[(\\w*)\\]");
    List<Pair<String, String>> result = pattern.matcher(text).results()
            .map(matchResult -> Pair.of(matchResult.group(0), matchResult.group(1)))
            .toList();

enter image description here

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