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myString.match("[\d]*") gives true for 12345 and 77777

but what I am looking would give false for 12345 and true for 7777

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what is your goal? – devsnd May 21 '12 at 18:13
Why 7777 is ok, but 12345 not? What kind of numbers are you looking for? – Pshemo May 21 '12 at 18:15
understanding the approach, is something abstract so no explanation thank you! – Whimusical May 21 '12 at 18:39

2 Answers 2

up vote 4 down vote accepted

would test for repeated same digits followed by non-digit. the \1 refers to the value matched by the (...) which would be the first digit.

(not sure what you want at the end - you might want to swap $ (end of line) for \D - but you need something so that 778 fails)

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The solution proposed by Andrew Cooke is a great start - his expression for catching the repeated numbers work perfectly. Nevertheless, in order to find that there are only the repeated numbers, I believe that you need to use boundary matchers, as explained in

I created a little fragment of code that show you how to perform it:

public static void main(String[] args) {
  Pattern pattern = Pattern.compile("^(\\d)\\1*$");
  String[] testArray = {"1111", "2111", "1111 ", "1111 2", "1234", "9999"};
  for (int i=0; i<teste.length; i++) {
     Matcher matcher = pattern.matcher(testArray[i]);
     boolean found=false;
     while (matcher.find()) {
         System.out.println("Text " + + " found at " + matcher.start()+" ending at index "+matcher.end());
     if (!found) {
        System.out.println("not found for "+testArray[i]);

I hope it helps.

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