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Working with printf in a bash script, adding no spaces after "\n" does not create a newline, whereas adding a space creates a newline, e. g.:

  1. No space after "\n"

    NewLine=`printf "\n"`
    echo -e "Firstline${NewLine}Lastline"


  2. Space after "\n "

    NewLine=`printf "\n "`
    echo -e "Firstline${NewLine}Lastline"



Question: Why doesn't 1. create the following result:


I know that this specific issue could have been worked around using other techniques, but I want to focus on why 1. does not work.

Edited: When using echo instead of printf, I get the expected result, but why does printf work differently?

    NewLine=`echo "\n"`
    echo -e "Firstline${NewLine}Lastline"


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6 Answers 6

up vote 9 down vote accepted

The backtick operator removes trailing new lines. See 3.4.5. Command substitution at

Note on edited question


[alvaro@localhost ~]$ printf "\n"

[alvaro@localhost ~]$ echo "\n"
[alvaro@localhost ~]$ echo -e "\n"

[alvaro@localhost ~]$

The echo command doesn't treat \n as a newline unless you tell him to do so:

       echo - display a line of text
       -e     enable interpretation of backslash escapes

POSIX 7 specifies this behaviour here:

[...] with the standard output of the command, removing sequences of one or more characters at the end of the substitution

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The thing is that this does not seem to be the case for the example in the edited part of the post, i.e the part: NewLine=echo "\n" – WolfHumble Apr 20 '10 at 22:31
So I guess the conclusion is that: 1) Printf works differently than echo in this case, in that echo requires "-e" for creating the actual newline 2) All trailing newlines gets deleted, both in printf and in echo -e, as described in: The post by mr. Dennis Williamson below was also useful to point out these issues. Thx! – WolfHumble Apr 22 '10 at 11:32
Is there a POSIX 7 workaround to avoid that behavior (I want to keep newlines), except writing to temp files or pipes? – Ciro Santilli 六四事件 法轮功 包卓轩 Jul 28 '13 at 16:00

It looks like BASH is removing trailing newlines. e.g.

NewLine=`printf " \n\n\n"`
echo -e "Firstline${NewLine}Lastline"
Firstline Lastline

NewLine=`printf " \n\n\n "`
echo -e "Firstline${NewLine}Lastline"

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Your edited echo version is putting a literal backslash-n into the variable $NewLine which then gets interpreted by your echo -e. If you did this instead:

NewLine=$(echo -e "\n")
echo -e "Firstline${NewLine}Lastline"

your result would be the same as in case #1. To make that one work that way, you'd have to escape the backslash and put the whole thing in single quotes:

NewLine=$(printf '\\n')
echo -e "Firstline${NewLine}Lastline"

or double escape it:

NewLine=$(printf "\\\n")

Of course, you could just use printf directly or you can set your NewLine value like this:

printf "Firstline\nLastline\n"


echo "Firstline${NewLine}Lastline"    # no need for -e
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this is confusing and -- if one where to nitpick -- also wrong. for example: in the second code block you say you escape the newline but you really only escape the backslash (the "escape"). – hop Apr 20 '10 at 17:43
Sorry for the confusion. I'll try to clarify it. – Dennis Williamson Apr 20 '10 at 19:28
Thx. for this answer as well. Was not able to upvote it because "it was to old to be changed", according to the system. – WolfHumble Apr 22 '10 at 11:41
$ printf -v NewLine "\n"
$ echo -e "Firstline${NewLine}Lastline"


$ echo "Firstline${NewLine}Lastline"
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We do not need "echo" or "printf" for creating the NewLine variable:

printf "%q\n" "${NewLine}"
echo "Firstline${NewLine}Lastline"
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Works ok if you add "\r"

$ nl=`printf "\n\r"` && echo "1${nl}2"
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The Windows line feed is \r\n, it you were referring to that :-? – Álvaro González Apr 20 '10 at 16:05
@Alvaro: just hack – Oleg Razgulyaev Apr 20 '10 at 17:57

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