57

I am new to shell script. I am sourcing a file, which is created in Windows and has carriage returns, using the source command. After I source when I append some characters to it, it always comes to the start of the line.

test.dat (which has carriage return at end):

testVar=value123

testScript.sh (sources above file):

source test.dat
echo $testVar got it

The output I get is

got it23

How can I remove the '\r' from the variable?

2
  • When you've written a Linux script in Windows, you need to convert the whole file so that all of the carriage returns are removed before running it, otherwise you will run into all sorts of problems. Attempting to replace individual carriage returns might fix some problems, but others will appear. For me it was often with messages about lines that were truncated. Thus, it is best to convert the whole file using a program like dos2unix.
    – Dave F
    Apr 7, 2021 at 21:49
  • Its an old one ofcourse, but this oneliner should do too. echo ${testVar%'\r'}
    – AP22
    Jun 30, 2021 at 2:17

6 Answers 6

92

yet another solution uses tr:

echo $testVar | tr -d '\r'
cat myscript | tr -d '\r'

the option -d stands for delete.

2
  • This helps but it's removing the last word/character for me.
    – Clover
    Oct 16, 2022 at 9:21
  • @Clover, can u please provide an example? I think there is something else hiding
    – Nik O'Lai
    Oct 16, 2022 at 12:32
32

You can use sed as follows:

MY_NEW_VAR=$(echo $testVar | sed -e 's/\r//g')
echo ${MY_NEW_VAR} got it

By the way, try to do a dos2unix on your data file.

2
  • I implemented this and it deletes every "r" not just carriage returns.
    – ffuentes
    Mar 18, 2021 at 15:43
  • Are you sure you kept the \ ?
    – Xavier S.
    Mar 20, 2021 at 20:27
27

Because the file you source ends lines with carriage returns, the contents of $testVar are likely to look like this:

$ printf '%q\n' "$testVar"
$'value123\r'

(The first line's $ is the shell prompt; the second line's $ is from the %q formatting string, indicating $'' quoting.)

To get rid of the carriage return, you can use shell parameter expansion and ANSI-C quoting (requires Bash):

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

Which should result in

$ printf '%q\n' "$testVar"
value123
6
  • I needed \n instead of \r ... for some reason Nov 5, 2018 at 13:33
  • @DavidGoodwin Weird. What does the output of printf '%q\n' "$testVar" look like? Nov 5, 2018 at 19:54
  • $'include:(\n .......blah blah .... )\n)' (My multiline string was made from sh VAR=$(cat <<EOF include:( .... blah blah ..... EOF ) Nov 7, 2018 at 9:10
  • @DavidGoodwin But do you even have carriage returns you want to remove? Nov 7, 2018 at 14:59
  • Aaaaaaaaaaah :lightbulb: etc. Thanks :) Nov 8, 2018 at 16:30
8

use this command on your script file after copying it to Linux/Unix

perl -pi -e 's/\r//' scriptfilename
2
  • Thanks a ton for perl. I couldn't download dos2unix, tr wouldn't work and what not! Thanks a lot! Jan 26, 2018 at 16:55
  • 1
    I used perl -p -e 's/\r\n$//' to trim \r\n from only the end of the input. Jun 13, 2019 at 20:20
6

Pipe to sed -e 's/[\r\n]//g' to remove both Carriage Returns (\r) and Line Feeds (\n) from each text line.

1
5

for a pure shell solution without calling external program:

NL=$'\n'    # define a variable to reference 'newline'

testVar=${testVar%$NL}    # removes trailing 'NL' from string
2
  • The problem is the carriage return, not the newline, though. Aug 3, 2018 at 14:43
  • so NL=$'\n' and NR=$'\r' and replace both, nothing happens on a no find condition
    – user176495
    Nov 28, 2018 at 1:26

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