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When I execute commands in bash, specifically wc -l < log.txt, the result is returned with a linebreak after it. How do I get rid of it?

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6 Answers

up vote 9 down vote accepted

One way:

wc -l < log.txt | xargs echo -n
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3  
Better: echo -n `wc -l log.txt` –  Satya Sep 30 '13 at 4:05
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If you assign its output to a variable, bash automatically strips whitespace:

linecount=`wc -l < log.txt`
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Trailing newlines are stripped, to be exact. It's the command substitution that removes them, not the variable assignment. –  chepner Sep 21 '12 at 12:20
    
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:]]}. –  Andrew Taranov Nov 8 '13 at 11:24
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One way using Perl:

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

One way using tr:

wc -l < log.txt | tr -d '\n'
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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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The variable is technically unnecessary. echo -n $(wc -l < log.txt) has the same effect. –  chepner Sep 21 '12 at 12:22
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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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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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