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I want to match a string with a regular expression


reg = ".*\\r.*";
str = "h\rello";
Matcher m1 = Pattern.compile(reg).matcher(str);
while (m1.find()) {
  System.out.println(m1.group());
}

I think the answer is :


h

ello

but the answer is :


ello

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  • I want to know why the result is different from what i think,and i want to know what i need to know to solve my douts. Oct 27, 2019 at 8:38

1 Answer 1

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This is because that is what the \r character does. On some consoles, \r "deletes everything on that line before it".

If you print:

System.out.println("a\rb");

You'll only see b.

Your regex indeed matches h\rello, and it is indeed printed by System.out.println, but since \r deletes everything before it, you only see ello.

You can see the individual characters that the regex has matched by doing:

System.out.println(Arrays.toString(m1.group().chars().toArray()));
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  • Thank you very much for answering my doubts. This answer is very helpful to me. Oct 27, 2019 at 8:42
  • This is just wild +1. Do you have any documentation reference? Oct 27, 2019 at 8:43
  • @TimBiegeleisen Unfortunately, I don't. All I know is that \r behaves the same on my OS. I don't know whether it's an OS issue, or a JVM-specific thing, or something else.
    – Sweeper
    Oct 27, 2019 at 8:45
  • My guess is that it's the console/OS. Newlines on Linux are just \n, while on Windows they are \r\n. Perhaps then \r does something differently on Linux. Oct 27, 2019 at 8:46
  • @TimBiegeleisen Well, I'm on a Mac. I found this, which might be useful. It's probably due to the fact that IDEs behave differently from real consoles. I mean abc\eb should in theory look like bbc, but on my IDE console it's just b.
    – Sweeper
    Oct 27, 2019 at 8:50

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