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When I execute commands in Bash (or to be specific, wc -l < log.txt), the output contains a linebreak after it. How do I get rid of it?

9 Answers 9

380

If your expected output is a single line, you can simply remove all newline characters from the output. It would not be uncommon to pipe to the tr utility, or to Perl if preferred:

wc -l < log.txt | tr -d '\n'

wc -l < log.txt | perl -pe 'chomp'

You can also use command substitution to remove the trailing newline:

echo -n "$(wc -l < log.txt)"

printf "%s" "$(wc -l < log.txt)"

If your expected output may contain multiple lines, you have another decision to make:

If you want to remove MULTIPLE newline characters from the end of the file, again use cmd substitution:

printf "%s" "$(< log.txt)"

If you want to strictly remove THE LAST newline character from a file, use Perl:

perl -pe 'chomp if eof' log.txt

Note that if you are certain you have a trailing newline character you want to remove, you can use head from GNU coreutils to select everything except the last byte. This should be quite quick:

head -c -1 log.txt

Also, for completeness, you can quickly check where your newline (or other special) characters are in your file using cat and the 'show-all' flag -A. The dollar sign character will indicate the end of each line:

cat -A log.txt
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  • This strips ALL newlines from the output, not just the trailing newline as the title asks. Dec 11, 2014 at 17:52
  • @CodyA.Ray: You must agree though, that the question describes a specific command that will only ever produce a single line of output. I have, however, updated my answer to suit the more general case. HTH.
    – Steve
    Dec 12, 2014 at 0:32
  • 4
    This would be better if the short options were replaced with long options. The long options teach as well as function e.g. tr --delete '\n'. Apr 5, 2016 at 13:10
  • 1
    I also did | tr -d '\r' Jul 20, 2016 at 9:16
  • 2
    My up-vote is for the head -c ... version -- Because I can now feed commands to the clipboard and preserve formatting, but for the last \n. Eg.: alias clip="head -c -1 | xclip -selection clipboard", not too shabby. Now when you pipe ls -l | clip ... All that wonderful output goes to the X-Server clipboard without a terminating \n. Ergo ... I can paste that into my next command, just so. Many thanks!
    – will
    Aug 17, 2018 at 14:24
94

One way:

wc -l < log.txt | xargs echo -n
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  • 25
    Better: echo -n `wc -l log.txt`
    – Satya
    Sep 30, 2013 at 4:05
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    Why is doing command execution in backticks better than using a pipe? Sep 9, 2014 at 7:05
  • 4
    These will not only remove the trailing newlines, but also squeeze any consecutive whitespaces (more precisely, as defined by IFS) to one space. Example: echo "a b" | xargs echo -n; echo -n $(echo "a b"). This may or may not be a problem for the use case.
    – musiphil
    Sep 15, 2014 at 18:16
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    Worse, if the output begins with -e, it will be interpreted as the option to echo. It's always safer to use printf '%s'.
    – musiphil
    Sep 15, 2014 at 18:17
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    xargs is very slow on my system (and I suspect it is on other systems too), so printf '%s' $(wc -l log.txt) might be faster, since printf is usually a builtin (Also because there is no information redirection). Never use backticks, they have been deprecated in newer POSIX versions and have numerous drawbacks.
    – yyny
    Mar 11, 2018 at 23:12
26

If you want to remove only the last newline, pipe through:

sed -z '$ s/\n$//'

sed won't add a \0 to then end of the stream if the delimiter is set to NUL via -z, whereas to create a POSIX text file (defined to end in a \n), it will always output a final \n without -z.

Eg:

$ { echo foo; echo bar; } | sed -z '$ s/\n$//'; echo tender
foo
bartender

And to prove no NUL added:

$ { echo foo; echo bar; } | sed -z '$ s/\n$//' | xxd
00000000: 666f 6f0a 6261 72                        foo.bar

To remove multiple trailing newlines, pipe through:

sed -Ez '$ s/\n+$//'
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  • 8
    I suppose this is a GNU extension, Mac sed doesn't provide -z.
    – Spidey
    Apr 13, 2020 at 19:05
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    You can install gnu version of sed on mac, as gsed and use it, by doing what it says here
    – Brad Parks
    Jun 17, 2021 at 11:18
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    Can someone explain what the $ in the beginning of the sed expression does?
    – what the
    Dec 5, 2021 at 22:07
  • If I interpret it correctly, the $ is for selecting the last line and thus to avoid executing the sed command on all lines. See gnu.org/software/sed/manual/sed.html#Numeric-Addresses
    – dwettstein
    Jan 3 at 22:25
19

There is also direct support for white space removal in Bash variable substitution:

testvar=$(wc -l < log.txt)
trailing_space_removed=${testvar%%[[:space:]]}
leading_space_removed=${testvar##[[:space:]]}
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  • 3
    You can also use trailing_linebreak_removed=${testvar%?}
    – PurplProto
    Jul 11, 2019 at 22:25
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    Note that if you are using command substitution then you don't need to do anything to remove trailing newlines. Bash already does that as part of command substitution: gnu.org/software/bash/manual/html_node/… Jun 9, 2020 at 1:33
11

If you want to print output of anything in Bash without end of line, you echo it with the -n switch.

If you have it in a variable already, then echo it with the trailing newline cropped:

$ testvar=$(wc -l < log.txt)
$ echo -n $testvar

Or you can do it in one line, instead:

$ echo -n $(wc -l < log.txt)
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  • 4
    The variable is technically unnecessary. echo -n $(wc -l < log.txt) has the same effect.
    – chepner
    Sep 21, 2012 at 12:22
10

If you assign its output to a variable, bash automatically strips whitespace:

linecount=`wc -l < log.txt`
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  • 13
    Trailing newlines are stripped, to be exact. It's the command substitution that removes them, not the variable assignment.
    – chepner
    Sep 21, 2012 at 12:20
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    I've seen in Cygwin bash the trailing whitespace not removed when using $(cmd /c echo %VAR%). In this case I've had to use ${var%%[[:space:]]}. Nov 8, 2013 at 11:24
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    Note: it is not the variable assignment, but the expression expansion that removes newlines. Aug 26, 2016 at 9:17
9

printf already crops the trailing newline for you:

$ printf '%s' $(wc -l < log.txt)

Detail:

  • printf will print your content in place of the %s string place holder.
  • If you do not tell it to print a newline (%s\n), it won't.
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    If you put double quotes around the command like "$(command)", the internal newlines will be preserved -- and only the trailing newline will be removed. The shell is doing all the work here -- printf is just a way to direct the results of command substitution back to stdout. Dec 8, 2014 at 17:29
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    It's not printf that's stripping the new line here, it's the shell that's doing it with the $( ) construct. Here's proof: printf "%s" "$(perl -e 'print "\n"')"
    – Flimm
    Feb 11, 2015 at 11:25
  • Again, it's worth noting that the resulting command line might become too long.
    – phk
    Apr 25, 2017 at 20:04
  • This is a convenient solution with @nobar's suggestion: $ printf '%s' "$(wc -l < log.txt)" Jul 1, 2018 at 5:47
4

Adding this for my reference more than anything else ^_^

You can also strip a new line from the output using the bash expansion magic

VAR=$'helloworld\n'

CLEANED="${VAR%$'\n'}"

echo "${CLEANED}"
1

Using Awk:

awk -v ORS="" '1' log.txt 

Explanation:

  1. -v assignment for ORS
  2. ORS - output record separator set to blank. This will replace new line (Input record separator) with ""
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  • 1
    -1 (though I did not actually press the button for it since I would only be allowed to change it once). This removes all newlines, not just any leading or trailing ones.
    – Melab
    Jul 13, 2021 at 20:33

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