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I have a bash variable that ends with \r\n:

$ # Not the real command to get VAR's value, just an example
$ VAR="$(echo -en 'hello\r\n')"
$ hexdump -C <<< "$VAR"
00000000  68 65 6c 6c 6f 0d 0a                              |hello..|
00000007

I would like to drop the \r (the \n itself is correctly handled by bash).

I may trim it (VAR="$(tr -d '\r' <<< "$VAR")"), but that implies to run a process just for that task.

I tried using "Remove matching suffix pattern" bash feature, but cannot find which pattern to use (e.g., ${VAR%\r}, ${VAR%\x0d}, ${VAR%[\r]}—but neither of them does work).

Any idea how to drop the \r without creating a subprocess?

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  • the \n itself is correctly handled by bash Hope you know, that $(...) removes the newline, and variable does not have a newline, and then <<< adds the newline to the input of hexdump.
    – KamilCuk
    Nov 16, 2021 at 9:57
  • 1
    I did know that bash handles newlines, I did not know how. Thank you for that info.
    – audeoudh
    Nov 16, 2021 at 10:04

1 Answer 1

6

Use the ANSI C quotes. With substitution, use

var=${var//$'\r'}

If you want to only remove the \r before the final \n, you can use

var=${var%$'\r\n'}$'\n'

i.e. you have to remove both the \r and \n, so you need to add the \n back.

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  • Indeed, bash itself handles the final \n, so ${VAR%$'\r'} does work. Cf. also KamilCuk's comment.
    – audeoudh
    Nov 16, 2021 at 10:03
  • @audeoudh: If you "have a variable that ends with \r\n", then you need to handle it yourself. If bash already removed the \n, you can just var=${var%$'\r'}.
    – choroba
    Nov 16, 2021 at 10:32

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