3

I am very stuck. I use this format to read a player's name in a string, like so:

"[PLAYER_yourname]"

I have tried for a few hours and can't figure out how to read only the part after the '_' and before the ']' to get there name.

Could I have some help? I played around with sub strings, splitting, some regex and no luck. Thanks! :)

BTW: This question is different, if I split by _ I don't know how to stop at the second bracket, as I have other string lines past the second bracket. Thanks!

  • 1
    use split method string.split("-") – Saket Mittal Jun 29 '15 at 15:16
  • 1
    Could u plz show ur effort? – Bacteria Jun 29 '15 at 15:16
  • you could use index of and then parse after n - 1 – Brandon Ling Jun 29 '15 at 15:16
  • 1
    @SaketMittal that is not what he wants. – Brandon Ling Jun 29 '15 at 15:17
  • 1
    what is the exact input? – Bacteria Jun 29 '15 at 15:18
6

You can do:

String s = "[PLAYER_yourname]";
String name = s.substring(s.indexOf("_") + 1, s.lastIndexOf("]"));
  • Thank you! I did not think of using that, because I didn't know how to use .indexOf or it's purpose. I appreciate it! – SirTrashyton Jun 29 '15 at 15:19
  • Glad it helped :) – Jean Logeart Jun 29 '15 at 15:20
  • 1
    If this answer solved your issue, then you should make it as the right answer. – A.sharif Jun 29 '15 at 15:22
  • keep in mind this doesn't work if a user handle/player name includes a "]", you can use str.length - 1 to fix this. Also Zachary answered this before this answer, and is exact same... – Brandon Ling Jun 29 '15 at 15:22
  • @BrandonLing Or use lastIndexOf – Jean Logeart Jun 29 '15 at 15:23
4

You can use a substring. int x = str.indexOf('_') gives you the character where the '_' is found and int y = str.lastIndexOF(']') gives you the character where the ']' is found. Then you can do str.substring(x + 1, y) and that will give you the string from after the symbol until the end of the word, not including the closing bracket.

3

Using the regex matcher functions you could do:

String s = "[PLAYER_yourname]";
String p = "\\[[A-Z]+_(.+)\\]";

Pattern r = Pattern.compile(p);
Matcher m = r.matcher(s);

if (m.find( ))
   System.out.println(m.group(1));

Result:

yourname

Explanation:

\[ matches the character [ literally

[A-Z]+ match a single character (case sensitive + between one and unlimited times)

_ matches the character _ literally

1st Capturing group (.+) matches any character (except newline)

\] matches the character ] literally
  • I like this solution because it allows solving general cases. – rpax Jun 29 '15 at 16:11
2

This solution uses Java regex

String player = "[PLAYER_yourname]";
Pattern PLAYER_PATTERN = Pattern.compile("^\\[PLAYER_(.*?)]$");
Matcher matcher = PLAYER_PATTERN.matcher(player);
if (matcher.matches()) {
  System.out.println( matcher.group(1) );
}

// prints yourname

see DEMO

enter image description here

  • The explanation screenshot where it comes from? seems cool – rpax Jun 29 '15 at 16:12
  • @rpax: regex101 – Tom Jun 29 '15 at 16:25
  • Yes, it comes from regex101. It does not have Java regex flavor but it still could be a helpful sandbox. – MaxZoom Jun 29 '15 at 16:32
1

You can do like this -

public static void main(String[] args) throws InterruptedException {
        String s = "[PLAYER_yourname]";
        System.out.println(s.split("[_\\]]")[1]);
    }

output: yourname

  • This solution is much better then accepted one. – MaxZoom Jun 29 '15 at 19:28
0

Try:

Pattern pattern = Pattern.compile(".*?_([^\\]]+)");
Matcher m = pattern.matcher("[PLAYER_yourname]");
if (m.matches()) {
  String name = m.group(1);
  // name = "yourname"
}

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