1

As far as I know, . is a metacharacter in java regex. But when I use it as below:

    String s = "1.2.3.4";
    Pattern pattern = Pattern.compile("[\\.]");

I got a Redundant Character Escape warning from IntelliJ IDEA. Any explaination?

  • because placing a . inside [] is enough to escape it – Omar Einea Mar 3 '18 at 12:52
3

It is because of the square brackets. Check this:

Pattern pattern = Pattern.compile("[\\.]");
System.out.println(pattern.matcher("").find());
System.out.println(pattern.matcher(".").find());
System.out.println(pattern.matcher("a").find());

false

true

false

pattern = Pattern.compile("[.]");
System.out.println(pattern.matcher("").find());
System.out.println(pattern.matcher(".").find());
System.out.println(pattern.matcher("a").find());

false

true

false

If you were to use the dot outside of the square brackets your escape would be required to capture a dot rather than any character.

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