2951

In Bash, tried this:

echo -e "Hello,\nWorld!"

But it doesn't print a newline, only \n. How can I make it print the newline?

I'm using Ubuntu 11.04 (Natty Narwhal).

Improve this question
10
  • 319
    For those saying "it works for me", the behavior of echo varies quite a bit between versions. Some will even print the "-e" as part of their output. If you want predictable behavior for anything nontrivial, use printf instead (as in @sth's answer).
    – Gordon Davisson
    Dec 12 '11 at 1:58
  • 7
    I could not get any of the suggestions in this answer working, because, as it turns out, I was attempting to use it in a function that returns a value, and all the echo (and printf) messages in the function were being appended to the return value after being individually stripped of newlines. Here is a question regarding this, with an extremely thorough answer: stackoverflow.com/questions/27872069/… This was like a three hour mystery tour.
    – aliteralmind
    Jan 10 '15 at 3:28
  • 8
    Also notable: in Unix & Linux Stack Exchange, the accepted answer to How to add new lines when using echo
    – Graham Perrin
    Apr 9 '16 at 7:02
  • 2
    echo -ne "hello\nworld" (you needed the n flag to interpret escapes) - but as others say, different echo commands may have different results!
    – Konchog
    Mar 28 '18 at 7:00
  • 2
    @Konchog echo -n man page entry on archlinux ` -n do not output the trailing newline` It has nothing to do with interpreting escapes
    – user12207064
    May 27 '20 at 18:19

19 Answers 19

Active Oldest Votes
3545

You could use printf instead:

printf "hello\nworld\n"

printf has more consistent behavior than echo. The behavior of echo varies greatly between different versions.

Improve this answer
19
  • 54
    or even printf %"s\n" hello world -- printf will reuse the format if too many arguments are given
    – glenn jackman
    Dec 12 '11 at 0:57
  • 39
    The OP asked about echo, not printf; and @choroba's answer below, which uses the -e option, fills the bill perfectly.
    – JESii
    May 27 '15 at 13:46
  • 74
    @JESii: It fits if your echo happens to support the -e option.
    – sth
    May 27 '15 at 13:57
  • 20
    With some versions of echo, -e is just printed in the output itself so I think this answer is perfectly valid since echo isn't consistent here (unless we're talking about a specific version).
    – Tejas Manohar
    Jun 10 '15 at 19:47
  • 17
    This is well and good if printf is available, but unlike echo sometimes printf isn't on the distro.
    – bigtunacan
    Aug 18 '15 at 13:53
2040

Make sure you are in Bash. All these four ways work for me:

echo -e "Hello\nworld"
echo -e 'Hello\nworld'
echo Hello$'\n'world
echo Hello ; echo world
Improve this answer
15
  • 439
    -e flag did it for me, which "enables interpretation of backslash escapes"
    – tandy
    Aug 7 '13 at 20:52
  • 28
    I think -e param doesn't exist on all *nix OS
    – kenorb
    Sep 4 '13 at 15:28
  • 14
    @kenorb: It exists in bash. It is a builtin.
    – choroba
    Sep 4 '13 at 20:09
  • 2
    Why does the third one work? Without the $ it returns "Hello n world"
    – Evan Donovan
    Nov 11 '13 at 21:33
  • 31
    As mentioned by various other -e does NOT work for all distributions and versions. In some cases it is ignored and in others it will actually be printed out. I don't believe this fixed it for the OP so should not be accepted answer
    – csga5000
    Apr 15 '16 at 4:23
672
+50 
echo $'hello\nworld'

prints

hello
world

$'' strings use ANSI C Quoting:

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.

Improve this answer
6
  • 16
    @EvgeniSergeev Not sure what you mean, but it didn't work for me either first. And that's because I was using double quotes and turns out this works only with single quotes! Tried in Terminal on Mac.
    – trss
    Oct 1 '16 at 5:49
  • 12
    Problems with variables in the string not being expanded.
    – willemdh
    Nov 3 '16 at 16:10
  • You can still concatenate double-quote strings. ` foo="bar"; echo $''$foo'efoot'`
    – Kamafeather
    Sep 3 '19 at 0:24
  • This is what I wanted. Works fine on Xenial.
    – Binita Bharati
    Jul 23 '20 at 13:32
  • It woks on GNU bash, version 4.4.23(1)-release (x86_64-pc-msys) W10 like a charm.
    – carloswm85
    Aug 13 at 0:15
171

You could always do echo "".

For example,

echo "Hello,"
echo ""
echo "World!"
Improve this answer
5
  • 7
    echo "" works for me and I think it's the simplest form to print a new line, even if this doesn't directly answer the question. Cheers.
    – Mario Awad
    Mar 24 '14 at 20:00
  • 3
    I think it's less obvious (and thus potentially more confusing) than echo -en "\n".
    – DBedrenko
    Sep 24 '14 at 12:50
  • 88
    echo is enough to obtain an empty line
    – ROMANIA_engineer
    May 25 '15 at 20:00
  • The \n did not work when you are using the read. But your method worked for adding a line.
    – Codename K
    Oct 12 '20 at 19:11
  • i had trouble getting the other answers to work on Mac. i ended up going with this incredibly obvious solution. :)
    – Kip
    Oct 22 at 12:12
52

In the off chance that someone finds themselves beating their head against the wall trying to figure out why a coworker's script won't print newlines, look out for this:

#!/bin/bash
function GET_RECORDS()
{
   echo -e "starting\n the process";
}

echo $(GET_RECORDS);

As in the above, the actual running of the method may itself be wrapped in an echo which supersedes any echos that may be in the method itself. Obviously I watered this down for brevity. It was not so easy to spot!

You can then inform your comrades that a better way to execute functions would be like so:

#!/bin/bash
function GET_RECORDS()
{
   echo -e "starting\n the process";
}

GET_RECORDS;
Improve this answer
1
  • 1
    Be sure you wrap the variable with quotes before echoing it out of the method.
    – ingyhere
    Dec 10 '16 at 1:26
32

Simply type 

echo

to get a new line

Improve this answer
7
  • 5
    Vastly underrated answer, can't believe this question has amassed 20+ answers since 2011 and that not one of them contains this simple solution.
    – Hashim Aziz
    Dec 4 '19 at 17:37
  • 4
    alias c='echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ; echo ;' This is the only way I can clear my screen, thanks!
    – Ahi Tuna
    Dec 9 '19 at 14:38
  • @Ahi Tuna: Please use your console keyboard shortcuts instead :)
    – R Sun
    Dec 9 '19 at 18:17
  • @RSun and how would I do that on a Debian terminal window on a Chromebook?
    – Ahi Tuna
    Dec 11 '19 at 12:07
  • 5
    @AhiTuna to clear screen, just type clear command
    – Yongfeng
    Dec 16 '20 at 5:40
27

POSIX 7 on echo

http://pubs.opengroup.org/onlinepubs/9699919799/utilities/echo.html

-e is not defined and backslashes are implementation defined:

If the first operand is -n, or if any of the operands contain a <backslash> character, the results are implementation-defined.

unless you have an optional XSI extension.

So I recommend that you should use printf instead, which is well specified:

format operand shall be used as the format string described in XBD File Format Notation [...]

the File Format Notation:

\n <newline> Move the printing position to the start of the next line.

Also keep in mind that Ubuntu 15.10 and most distros implement echo both as:

  • a Bash built-in: help echo
  • a standalone executable: which echo

which can lead to some confusion.

Improve this answer
16 
str='hello\nworld'
$ echo | sed "i$str"
hello
world
Improve this answer
2
  • 1
    This is actually a great answer since it works for string concatenations. Great!
    – LavaScornedOven
    Oct 14 '13 at 2:26
  • 1
    Why bother to invoke a second program? It's not that we are trying to write a real time application in bash ;) but its not necessary.
    – Felix D.
    Aug 4 '17 at 8:16
12

You can also do:

echo "hello
world"

This works both inside a script and from the command line.

On the command line, press Shift+Enter to do the line break inside the string.

This works for me on my macOS and my Ubuntu 18.04 (Bionic Beaver) system.

Improve this answer
0
8

I just use echo without any arguments:

echo "Hello"
echo
echo "World"
Improve this answer
0
8

There is a new parameter expansion added in Bash 4.4 that interprets escape sequences:

${parameter@operator} - E operator

The expansion is a string that is the value of parameter with backslash escape sequences expanded as with the $'…' quoting mechanism.

$ foo='hello\nworld'
$ echo "${foo@E}"
hello
world
Improve this answer
1
  • worked like a charm for printing a message that was a variable inside a function, from outside the function.
    – Shōgun8
    Nov 22 at 15:33
6

This could better be done as

x="\n"
echo -ne $x

-e option will interpret backslahes for the escape sequence
-n option will remove the trailing newline in the output

PS: the command echo has an effect of always including a trailing newline in the output so -n is required to turn that thing off (and make it less confusing)

Improve this answer
1
  • 1
    echo -ne "hello\nworld" for the exact answer of the question :)
    – Dhwanit
    Feb 19 '18 at 7:49
5

My script:

echo "WARNINGS: $warningsFound WARNINGS FOUND:\n$warningStrings

Output:

WARNING : 2 WARNINGS FOUND:\nWarning, found the following local orphaned signature file:

On my Bash script I was getting mad as you until I've just tried:

echo "WARNING : $warningsFound WARNINGS FOUND:
$warningStrings"

Just hit Enter where you want to insert that jump. The output now is:

WARNING : 2 WARNINGS FOUND:
Warning, found the following local orphaned signature file:
Improve this answer
3
  • 7
    Just a note, you will probably want to use ${ } around your variable names as not doing so can lead to really weird behavior when a shell finds a variable called $warningsFound and prints that and not the two separate outputs.
    – dragon788
    Jan 27 '16 at 21:06
  • @dragon788 maybe I'm missing something, but the variable IS actually called $warningsFound ?
    – psynnott
    Feb 10 '17 at 9:47
  • 3
    I missed a word on that. If you had a variable called $warnings, in some cases without using ${warningsFound}, you could potentially end up with the contents of $warnings + "Found" instead of the variable you intended.
    – dragon788
    Feb 10 '17 at 13:12
4

If you're writing scripts and will be echoing newlines as part of other messages several times, a nice cross-platform solution is to put a literal newline in a variable like so:

newline='
'

echo "first line$newlinesecond line"
echo "Error: example error message n${newline}${usage}" >&2 #requires usage to be defined
Improve this answer
4

One more entry here for those that didn't make it work with any of these solutions, and need to get a return value from their function:

function foo()
{
    local v="Dimi";
    local s="";
    .....
    s+="Some message here $v $1\n"
    .....
    echo $s
}

r=$(foo "my message");
echo -e $r;

Only this trick worked on a Linux system I was working on with this Bash version:

GNU bash, version 2.2.25(1)-release (x86_64-redhat-linux-gnu)
Improve this answer
3

You could also use echo with braces,

$ (echo hello; echo world)
hello
world
Improve this answer
4
  • 1
    syntax error near unexpected token `(' when called in .sh file
    – cosbor11
    Oct 26 '15 at 23:37
  • 1
    try echo hello; echo world
    – Avinash Raj
    Oct 27 '15 at 1:34
  • 1
    Or "echo hello && echo world" or just:" echo hello echo world
    – csga5000
    Apr 15 '16 at 4:24
  • An explanation would be in order.
    – Peter Mortensen
    Jul 9 at 16:57
0

Sometimes you can pass multiple strings separated by a space and it will be interpreted as \n.

For example when using a shell script for multi-line notifcations:

#!/bin/bash
notify-send 'notification success' 'another line' 'time now '`date +"%s"`
Improve this answer
1
  • This is incorrect. It is never interpreted as \n. It is interpreted as a separate argument to the program, and the program itself may display that argument on a new line, but that doesn't mean that it was converted to \n at any point and is entirely dependent on the program.
    – Score_Under
    Mar 27 '19 at 10:52
0

This got me there....

outstuff=RESOURCE_GROUP=[$RESOURCE_GROUP]\\nAKS_CLUSTER_NAME=[$AKS_CLUSTER_NAME]\\nREGION_NAME=[$REGION_NAME]\\nVERSION=[$VERSION]\\nSUBNET-ID=[$SUBNET_ID]
printf $outstuff

Yields:

RESOURCE_GROUP=[akswork-rg]
AKS_CLUSTER_NAME=[aksworkshop-804]
REGION_NAME=[eastus]
VERSION=[1.16.7]
SUBNET-ID=[/subscriptions/{subidhere}/resourceGroups/makeakswork-rg/providers/Microsoft.Network/virtualNetworks/aks-vnet/subnets/aks-subnet]
Improve this answer
1
  • An explanation would be in order. E.g, what is the gist/idea? Please respond by editing your answer, not here in comments (without "Edit:", "Update:", or similar - the answer should appear as if it was written today).
    – Peter Mortensen
    Jul 9 at 17:01
-5

Additional solution:

In cases, you have to echo a multiline of the long contents (such as code/ configurations)

For example:

  • A Bash script to generate codes/ configurations

echo -e, printf might have some limitation

You can use some special char as a placeholder as a line break (such as ~) and replace it after the file was created using tr:

echo ${content} | tr '~' '\n' > $targetFile

It needs to invoke another program (tr) which should be fine, IMO.

Improve this answer
1
  • 2
    This is a poor solution. There is absolutely no need to invoke tr in this case. Furthermore, what if the text includes a ~ already?
    – blackbrandt
    Jul 22 '20 at 15:14

Not the answer you're looking for? Browse other questions tagged or ask your own question.