3

My setup: perl 5.20.2

The file is changed in-place, as expected, with this code:

echo abc > test.txt
perl -i -ne 's/b/x/;print' test.txt

But here, the output is printed to stdout and the file is emptied. Why?

echo abc > test.txt
perl -i -ne 's/b/x/;push@a,$_;END{print for @a}' test.txt
  • Which file do you expect the END to add to? You only reach it after you've iterated through all the files passed add parameters – ikegami Sep 9 '15 at 4:33
7

END blocks aren't part of the -i -n magic.

-n wraps an implicit while (<>) around (most of) your code, and -i causes files handled by <> to be overwritten.

However, as noted in the docs, BEGIN and END blocks live outside that implicit loop, and aren't affected by -i. There's nothing causing your print to go anywhere by stdout.

  • This is really more about the -i docs than the -n docs, though. – cjm Sep 8 '15 at 21:27
  • 4
    @Igor: If you want to the functional equivalent to what you intended with the END block, then use eof instead. – Miller Sep 8 '15 at 21:28
  • @cjm The -i docs don't mention BEGIN and END at all, which is the key difference between the two examples. – Paul Roub Sep 8 '15 at 21:41
  • Yeah, it's more implicit in knowing that the <> construct can involve multiple files, so you have to print before it changes to the next file. (The end of the last file is a special case of changing files.) – cjm Sep 8 '15 at 22:06
  • 2
    With the tip of @Miller, the solution is perl -i -ne 's/b/x/;push@a,$_;next unless eof;print for @a' test.txt – Igor Liferenko Sep 8 '15 at 23:52

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.