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?

  • Try doing this "(.*$)" and what do you get? – epascarello Oct 18 '12 at 5:31
  • Replace with "[$1]" instead - that should give some hints :) – user166390 Oct 18 '12 at 5:33
  • hmm... (.*$) didn't help, but [$1] gave me "[test]s[]s". So there is an empty capture. Why? – Reactgular Oct 18 '12 at 5:36
  • @MathewFoscarini Without the s in there, notice the output is [test][] - what does this say about the captures? Now, compare with (.+)$ as the regex; what changed? – user166390 Oct 18 '12 at 5:36
  • 2
    The + modifier means match one or more. * is zero or more. – user166390 Oct 18 '12 at 5:38
5

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

  • thanks Mat. You say "empty string" to which one are you referring? – Reactgular Oct 18 '12 at 5:37
  • @MathewFoscarini [test][] <-- the 2nd capture was the "empty string" – user166390 Oct 18 '12 at 5:37

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