This

STR="Hello\nWorld"
echo $STR

produces as output

Hello\nWorld

instead of

Hello
World

What should I do to have a newline in a string?

Note: This question is not about echo. I'm aware of echo -e, but I'm looking for a solution that allows passing a string (which includes a newline) as an argument to other commands that do not have a similar option to interpret \n's as newlines.

10 Answers 10

up vote 255 down vote accepted

The solution is to use $'string', for example:

$ STR=$'Hello\nWorld'
$ echo "$STR"
Hello
World

Here is an excerpt from the Bash manual page:

   Words of the form $'string' are treated specially.  The word expands to
   string, with backslash-escaped characters replaced as specified by  the
   ANSI  C  standard.  Backslash escape sequences, if present, are decoded
   as follows:
          \a     alert (bell)
          \b     backspace
          \e
          \E     an escape character
          \f     form feed
          \n     new line
          \r     carriage return
          \t     horizontal tab
          \v     vertical tab
          \\     backslash
          \'     single quote
          \"     double quote
          \nnn   the eight-bit character whose value is  the  octal  value
                 nnn (one to three digits)
          \xHH   the  eight-bit  character  whose value is the hexadecimal
                 value HH (one or two hex digits)
          \cx    a control-x character

   The expanded result is single-quoted, as if the  dollar  sign  had  not
   been present.

   A double-quoted string preceded by a dollar sign ($"string") will cause
   the string to be translated according to the current  locale.   If  the
   current  locale  is  C  or  POSIX,  the dollar sign is ignored.  If the
   string is translated and replaced, the replacement is double-quoted.
  • 55
    That's valid bash, but not POSIX sh. – jmanning2k Jun 6 '12 at 22:24
  • 7
    +1-just a note: export varDynamic="$varAnother1$varAnother2"$'\n' – Yordan Georgiev May 11 '13 at 8:19
  • 2
    This does indeed work with literal strings as the OP asked, but fails as soon as variables are to be substituted: STR=$"Hello\nWorld" simply prints Hello\nWorld. – ssc Sep 26 '16 at 15:06
  • 2
    @ssc single quotes, not double – miken32 Mar 24 '17 at 16:16
  • 3
    @ssc there are no variables in your example. Also, this method requires single quotes. Finally, to include interpolated variables you would have to concatenate double-quoted and special-single-quoted strings together. e.g. H="Hello"; W="World"; STR="${H}"$'\n'"${W}"; echo "${STR}" will echo "Hello" and "World" on separate lines – JDS Nov 8 '17 at 16:07

Echo is so nineties and so fraught with perils that its use should result in core dumps no less than 4GB. Seriously, echo's problems were the reason why the Unix Standardization process finally invented the printf utility, doing away with all the problems.

So to get a newline in a string:

FOO="hello
world"
BAR=$(printf "hello\nworld\n") # Alternative; note: final newline is deleted
printf '<%s>\n' "$FOO"
printf '<%s>\n' "$BAR"

There! No SYSV vs BSD echo madness, everything gets neatly printed and fully portable support for C escape sequences. Everybody please use printf now and never look back.

  • 2
    Thanks for this answer, I think it provides really good advice. Note, however, that my original question wasn't really about how to get echo to print newlines, but how to get a newline into a shell variable. You show how to do that using printf as well, but I think that the solution from amphetamachine using $'string' is even cleaner. – Juan A. Navarro May 16 '12 at 15:30
  • 8
    Only for a deficient definition of 'clean'. The $'foo' syntax is not valid POSIX syntax as of 2013. Many shells will complain. – Jens Feb 4 '13 at 13:23
  • 5
    BAR=$(printf "hello\nworld\n") does not print the trailing \n for me – Jonny May 24 '13 at 3:47
  • 3
    @Jonny It shouldn't; the shell specification for command substitution says that one or more newlines at the end of the output are deleted. I realize this is unexpected for my example and have edited it to include a newline in the printf. – Jens May 24 '13 at 8:14
  • 3
    @ismael No, $() is specified by POSIX as removing sequences of one or more <newline> characters at the end of the substitution. – Jens Jun 3 '14 at 8:21

What I did based on the other answers was

NEWLINE=$'\n'
my_var="__between eggs and bacon__"
echo "spam${NEWLINE}eggs${my_var}bacon${NEWLINE}knight"

# which outputs:
spam
eggs__between eggs and bacon__bacon
knight
  • 2
    Ugh not a pretty solution. But at least it works. – user636044 Nov 13 '15 at 10:40

The problem isn't with the shell. The problem is actually with the echo command itself, and the lack of double quotes around the variable interpolation. You can try using echo -e but that isn't supported on all platforms, and one of the reasons printf is now recommended for portability.

You can also try and insert the newline directly into your shell script (if a script is what you're writing) so it looks like...

#!/bin/sh
echo "Hello
World"
#EOF

or equivalently

#!/bin/sh
string="Hello
World"
echo "$string"  # note double quotes!
  1. The only simple alternative is to actually type a new line in the variable:

    $ STR='new
    line'
    $ printf '%s' "$STR"
    new
    line
    

    Yes, that means writing Enter where needed in the code.

  2. There are several equivalents to a new line character.

    \n           ### A common way to represent a new line character.
    \012         ### Octal value of a new line character.
    \x0A         ### Hexadecimal value of a new line character.
    

    But all those require "an interpretation" by some tool (POSIX printf):

    echo -e "new\nline"           ### on POSIX echo, `-e` is not required.
    printf 'new\nline'            ### Understood by POSIX printf.
    printf 'new\012line'          ### Valid in POSIX printf.
    printf 'new\x0Aline'       
    printf '%b' 'new\0012line'    ### Valid in POSIX printf.
    

    And therefore, the tool is required to build a string with a new-line:

    $ STR="$(printf 'new\nline')"
    $ printf '%s' "$STR"
    new
    line
    
  3. In some shells, the sequence $' is an special shell expansion. Known to work in ksh93, bash and zsh:

    $ STR=$'new\nline'
    
  4. Of course, more complex solutions are also possible:

    $ echo '6e65770a6c696e650a' | xxd -p -r
    new
    line
    

    Or

    $ echo "new line" | sed 's/ \+/\n/g'
    new
    line
    
  • That is a very clear and detailed answer! – Juan A. Navarro Mar 30 '16 at 17:21

I find the -e flag elegant and straight forward

STR="Hello\nWorld" echo -e $STR #outputs Hello World

If the string is the output of another command, I just use quotes

indexes_diff=$(git diff index.yaml) echo "$indexes_diff"

  • 1
    This has already been mentioned in other answers. Also, although it was already there, I've just edited the question to stress the fact that this question is not about echo. – Juan A. Navarro Jun 5 '15 at 7:23
  • This is not an answer to the question – Rohit Gupta Jun 5 '15 at 7:39
  • This totally answers the question I was looking for! Thanks! – Kieveli Nov 17 '15 at 19:23
  • Worked well for me here. I've used to create a file based on this echo and it generated new lines on the output correctly. – Mateus Leon May 28 '16 at 4:19

A $ right before single quotation marks '...\n...' as follows, however double quotation marks doesn't work.

$ echo $'Hello\nWorld'
Hello
World
$ echo $"Hello\nWorld"
Hello\nWorld
  • Perfect. :) Works with $ read too. – datico Apr 21 '17 at 22:35

I'm no bash expert, but this one worked for me:

STR1="Hello"
STR2="World"
NEWSTR=$(cat << EOF
$STR1

$STR2
EOF
)
echo "$NEWSTR"

I found this easier to formatting the texts.

  • Good old heredoc. And it's probably POSIX compliant too! – pyb Aug 24 '17 at 15:48

On my system (Ubuntu 17.10) your example just works as desired, both when typed from the command line (into sh) and when executed as a sh script:

[bash]§ sh
$ STR="Hello\nWorld"
$ echo $STR
Hello
World
$ exit
[bash]§ echo "STR=\"Hello\nWorld\"
> echo \$STR" > test-str.sh
[bash]§ cat test-str.sh 
STR="Hello\nWorld"
echo $STR
[bash]§ sh test-str.sh 
Hello
World

I guess this answers your question: it just works. (I have not tried to figure out details such as at what moment exactly the substitution of the newline character for \n happens in sh).

However, i noticed that this same script would behave differently when executed with bash and would print out Hello\nWorld instead:

[bash]§ bash test-str.sh
Hello\nWorld

I've managed to get the desired output with bash as follows:

[bash]§ STR="Hello
> World"
[bash]§ echo "$STR"

Note the double quotes around $STR. This behaves identically if saved and run as a bash script.

The following also gives the desired output:

[bash]§ echo "Hello
> World"

Those picky ones that need just the newline and despise the multiline code that breaks indentation, could do:

IFS="$(printf '\nx')"
IFS="${IFS%x}"

Bash (and likely other shells) gobble all the trailing newlines after command substitution, so you need to end the printf string with a non-newline character and delete it afterwards. This can also easily become a oneliner.

IFS="$(printf '\nx')" IFS="${IFS%x}"

I know this is two actions instead of one, but my indentation and portability OCD is at peace now :) I originally developed this to be able to split newline-only separated output and I ended up using a modification that uses \r as the terminating character. That makes the newline splitting work even for the dos output ending with \r\n.

IFS="$(printf '\n\r')"

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