9

The following code will set str to "testss"

String str = "test".replaceAll("(.*)$","$1s");

Where as the following code will set it to "tests"

String str = "test".replaceFirst("(.*)$","$1s");

I would have expected both operations to produce the same result. Can someone explain why replaceAll adds an extra s to the end of the string?

7
  • Try doing this "(.*$)" and what do you get? Oct 18, 2012 at 5:31
  • Replace with "[$1]" instead - that should give some hints :)
    – user166390
    Oct 18, 2012 at 5:33
  • hmm... (.*$) didn't help, but [$1] gave me "[test]s[]s". So there is an empty capture. Why?
    – Reactgular
    Oct 18, 2012 at 5:36
  • @MathewFoscarini Without the s in there, notice the output is [test][] - what does this say about the captures? Now, compare with (.+)$ as the regex; what changed?
    – user166390
    Oct 18, 2012 at 5:36
  • 2
    The + modifier means match one or more. * is zero or more.
    – user166390
    Oct 18, 2012 at 5:38

1 Answer 1

5

This is because "(.*)$" captures two strings from "test", "test" and the empty string (""). So replaceAll will add two "s".

2
  • thanks Mat. You say "empty string" to which one are you referring?
    – Reactgular
    Oct 18, 2012 at 5:37
  • @MathewFoscarini [test][] <-- the 2nd capture was the "empty string"
    – user166390
    Oct 18, 2012 at 5:37

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.