I have a pretty simple script that is something like the following:

#!/bin/bash

VAR1="$1"    
MOREF='sudo run command against $VAR1 | grep name | cut -c7-'

echo $MOREF

When I run this script from the command line and pass it the arguments, I am not getting any output. However, when I run the commands contained within the $MOREF variable, I am able to get output.

I would like to know how one can take the results of a command that needs to be run within a script, save it to a variable, and then output that variable on the screen?

  • 1
    A related question stackoverflow.com/questions/25116521/… – Sandeepan Nath Aug 25 '16 at 7:09
  • 14
    As an aside, all-caps variables are defined by POSIX for variable names with meaning to the operating system or shell itself, whereas names with at least one lowercase character are reserved for application use. Thus, consider using lowercase names for your own shell variables to avoid unintended conflicts (keeping in mind that setting a shell variable will overwrite any like-named environment variable). – Charles Duffy Mar 27 '17 at 15:56
  • As an aside, capturing output into a variable just so you can then echo the variable is a useless use of echo, and a useless use of variables. – tripleee Jul 21 at 6:58

13 Answers 13

up vote 1828 down vote accepted

In addition to backticks (`command`), you can use $(command), which I find easier to read, and allows for nesting.

OUTPUT="$(ls -1)"
echo "${OUTPUT}"

Quoting (") does matter to preserve multi-line values.

  • 53
    Can we provide some separator for multi line output ? – Aryan Feb 21 '13 at 12:26
  • 58
    FYI This is called "command substitution": gnu.org/software/bash/manual/bashref.html#Command-Substitution – David Doria Jan 24 '14 at 18:35
  • 13
    White space (or lack of whitespace) matters – Ali Apr 24 '14 at 10:40
  • 8
    @timhc22, the curly braces are irrelevant; it's only the quotes that are important re: whether expansion results are string-split and glob-expanded before being passed to the echo command. – Charles Duffy Apr 21 '15 at 15:37
  • 10
    Curly braces can be used when the variable is immediately followed by more characters which could be interpreted as part of the variable name. e.g. ${OUTPUT}foo. They are also required when performing inline string operations on the variable, such as ${OUTPUT/foo/bar} – rich remer Jun 1 '16 at 23:16

Update (2018): the right way is

$(sudo run command)

You're using the wrong kind of apostrophe. You need `, not '. This character is called "backticks" (or "grave accent").

Like this:

#!/bin/bash

VAR1="$1"
VAR2="$2"

MOREF=`sudo run command against "$VAR1" | grep name | cut -c7-`

echo "$MOREF"
  • 23
    The backtick syntax is obsolescent, and you really need to put double quotes around the variable interpolation in the echo. – tripleee Dec 28 '15 at 12:28
  • 8
    I would add that you have to be careful with the spaces around '=' in the assignment above. You shouln't have any spaces there, otherwise you'll get an incorrect assignment – Zotov Jan 5 '16 at 11:07
  • 4
    tripleeee's comment is correct. In cygwin (May 2016), `` doesn't work while $() works. Couldn't fix until I saw this page. – toddwz May 13 '16 at 12:42
  • Elaboration such as an example on Update (2018) would be appreciated. – Eduard Jul 13 at 13:31

As they have already indicated to you, you should use 'backticks'.

The alternative proposed $(command) works as well, and it also easier to read, but note that it is valid only with bash or korn shells (and shells derived from those), so if your scripts have to be really portable on various Unix systems, you should prefer the old backticks notation.

  • 17
    They are overtly cautious. Backticks have been deprecated by POSIX a long time ago; the more modern syntax should be available in most shells from this millennium. (There are still legacy environments coughHP-UXcough which are stuck firmly in the early nineties.) – tripleee Sep 18 '14 at 14:40
  • 17
    Incorrect. $() is fully compatible with POSIX sh, as standardized over two decades ago. – Charles Duffy Apr 21 '15 at 15:38
  • 2
    Note that /bin/sh on Solaris 10 still does not recognize $(…) — and AFAIK that's true on Solaris 11 too. – Jonathan Leffler Dec 18 '15 at 20:07
  • 1
    @JonathanLeffler It is actually no more the case with Solaris 11 where /bin/sh is ksh93. – jlliagre Dec 21 '16 at 17:05
  • @tripleee - response three years late :-) but I've used $() in the POSIX shell on HP-UX for the past 10+ years. – Bob Jarvis Nov 15 '17 at 3:14

I know three ways to do:

1) Functions are suitable for such tasks:

func (){
ls -l
}

Invoke it by saying func

2) Also another suitable solution could be eval:

var="ls -l"
eval $var

3) The third one is using variables directly:

var=$(ls -l)
OR
var=`ls -l`

you can get output of third solution in good way:

echo "$var"

and also in nasty way:

echo $var
  • 1
    The first two do not seem to answer the question as it currently stands, and the second is commonly held to be dubious. – tripleee Sep 22 '16 at 4:39
  • 1
    As someone who is entirely new to bash, why is "$var" good and $var nasty? – Peter Jan 25 at 7:36

Some tricks I use to set variables from commands

2nd Edit 2018-02-12: Adding a special way, see at very bottom of this!

2018-01-25 Edit: add sample function (for populating vars about disk usage)

First simple old and compatible way

myPi=`echo '4*a(1)' | bc -l`
echo $myPi 
3.14159265358979323844

Mostly compatible, second way

As nesting could become heavy, parenthesis was implemented for this

myPi=$(bc -l <<<'4*a(1)')

Nested sample:

SysStarted=$(date -d "$(ps ho lstart 1)" +%s)
echo $SysStarted 
1480656334

reading more than one variable (with bashisms)

df -k /
Filesystem     1K-blocks   Used Available Use% Mounted on
/dev/dm-0         999320 529020    401488  57% /

If I just want Used value:

array=($(df -k /))

you could see array variable:

declare -p array
declare -a array='([0]="Filesystem" [1]="1K-blocks" [2]="Used" [3]="Available" [
4]="Use%" [5]="Mounted" [6]="on" [7]="/dev/dm-0" [8]="999320" [9]="529020" [10]=
"401488" [11]="57%" [12]="/")'

Then:

echo ${array[9]}
529020

But I prefer this:

{ read foo ; read filesystem size used avail prct mountpoint ; } < <(df -k /)
echo $used
529020

1st read foo will just skip header line (variable $foo will contain something like Filesystem 1K-blocks Used Available Use% Mounted on)

Sample function for populating some variables:

#!/bin/bash

declare free=0 total=0 used=0

getDiskStat() {
    local foo
    {
        read foo
        read foo total used free foo
    } < <(
        df -k ${1:-/}
    )
}

getDiskStat $1
echo $total $used $free

Nota: declare line is not required, just for readability.

About sudo cmd | grep ... | cut ...

shell=$(cat /etc/passwd | grep $USER | cut -d : -f 7)
echo $shell
/bin/bash

(Please avoid useless cat! So this is just 1 fork less:

shell=$(grep $USER </etc/passwd | cut -d : -f 7)

All pipes (|) implies forks. Where another process have to be run, accessing disk, libraries calls and so on.

So using sed for sample, will limit subprocess to only one fork:

shell=$(sed </etc/passwd "s/^$USER:.*://p;d")
echo $shell

And with bashisms:

But for many actions, mostly on small files, could do the job himself:

while IFS=: read -a line ; do
    [ "$line" = "$USER" ] && shell=${line[6]}
  done </etc/passwd
echo $shell
/bin/bash

or

while IFS=: read loginname encpass uid gid fullname home shell;do
    [ "$loginname" = "$USER" ] && break
  done </etc/passwd
echo $shell $loginname ...

Going further about variable splitting...

Have a look at my answer to How do I split a string on a delimiter in Bash?

Alternative: reducing forks by using background long-running tasks

2nd Edit 2018-02-12: In order to prevent multiple forks like

myPi=$(bc -l <<<'4*a(1)'
myRay=12
myCirc=$(bc -l <<<" 2 * $myPi * $myRay ")

or

myStarted=$(date -d "$(ps ho lstart 1)" +%s)
mySessStart=$(date -d "$(ps ho lstart $$)" +%s)

And because date and bc could work line by line:

bc -l <<<$'3*4\n5*6'
12
30

date -f - +%s < <(ps ho lstart 1 $$)
1516030449
1517853288

We could use long running background process to make jobs repetitively, without having to initiate new fork for each request:

mkfifo /tmp/myFifoForBc
exec 5> >(bc -l >/tmp/myFifoForBc)
exec 6</tmp/myFifoForBc
rm /tmp/myFifoForBc

(of course, FD 5 and 6 have to be unused!)... From there, you could use this process by:

echo "3*4" >&5
read -u 6 foo
echo $foo
12

echo >&5 "pi=4*a(1)"
echo >&5 "2*pi*12"
read -u 6 foo
echo $foo
75.39822368615503772256

Into a function newConnector

You may found my newConnector function on GitHub.Com or on my own site (Nota on github, there is two files, on my site, function and demo are bundled into 1 file wich could be sourced for use or just run for demo)

Sample:

. shell_connector.sh

tty
/dev/pts/20

ps --tty pts/20 fw
    PID TTY      STAT   TIME COMMAND
  29019 pts/20   Ss     0:00 bash
  30745 pts/20   R+     0:00  \_ ps --tty pts/20 fw

newConnector /usr/bin/bc "-l" '3*4' 12

ps --tty pts/20 fw
    PID TTY      STAT   TIME COMMAND
  29019 pts/20   Ss     0:00 bash
  30944 pts/20   S      0:00  \_ /usr/bin/bc -l
  30952 pts/20   R+     0:00  \_ ps --tty pts/20 fw

declare -p PI
bash: declare: PI: not found

myBc '4*a(1)' PI
declare -p PI
declare -- PI="3.14159265358979323844"

The function myBc let you use the background task with simple syntax, and for date:

newConnector /bin/date '-f - +%s' @0 0
myDate '2000-01-01'
  946681200
myDate "$(ps ho lstart 1)" boottime
myDate now now ; read utm idl </proc/uptime
myBc "$now-$boottime" uptime
printf "%s\n" ${utm%%.*} $uptime
  42134906
  42134906

ps --tty pts/20 fw
    PID TTY      STAT   TIME COMMAND
  29019 pts/20   Ss     0:00 bash
  30944 pts/20   S      0:00  \_ /usr/bin/bc -l
  32615 pts/20   S      0:00  \_ /bin/date -f - +%s
   3162 pts/20   R+     0:00  \_ ps --tty pts/20 fw

From there, if you want to end one of background process, you just have to close his fd:

eval "exec $DATEOUT>&-"
eval "exec $DATEIN>&-"
ps --tty pts/20 fw
    PID TTY      STAT   TIME COMMAND
   4936 pts/20   Ss     0:00 bash
   5256 pts/20   S      0:00  \_ /usr/bin/bc -l
   6358 pts/20   R+     0:00  \_ ps --tty pts/20 fw

wich is not needed, because all fd close when main process finish.

  • The nested sample above is what I was looking for. There may be a simpler way, but what I was looking for was the way to find out if a docker container already exists given its name in an environment variable. So for me: EXISTING_CONTAINER=$(docker ps -a | grep "$(echo $CONTAINER_NAME)") was the statement I was looking for. – Capricorn1 Aug 2 '17 at 18:02
  • 1
    @capricorn1 That's a useless use of echo; you want simply grep "$CONTAINER_NAME" – tripleee Nov 15 '17 at 4:20
  • 2018 Edit: Add sample function (for populating vars about disk usage) – F. Hauri Jan 25 at 9:41

Just to be different:

MOREF=$(sudo run command against $VAR1 | grep name | cut -c7-)

If you want to do it with multiline/multiple command/s then you can do this:

output=$( bash <<EOF
#multiline/multiple command/s
EOF
)

Or:

output=$(
#multiline/multiple command/s
)

Example:

#!/bin/bash
output="$( bash <<EOF
echo first
echo second
echo third
EOF
)"
echo "$output"

Output:

first
second
third

Using heredoc you can simplify things pretty easily by breaking down your long single line code into multiline one. Another example:

output="$( ssh -p $port $user@$domain <<EOF 
#breakdown your long ssh command into multiline here.
EOF
)"
  • 2
    What's with the second bash inside the command substitution? You are already creating a subshell by the command substitution itself. If you want to put multiple commands, just separate them by newline or semicolon. output=$(echo first; echo second; ...) – tripleee Dec 28 '15 at 12:27
  • @tripleee just different ways of getting it done. – Jahid Dec 29 '15 at 8:43
  • Then similarly 'bash -c "bash -c \"bash -c ...\""' would be "different", too; but I don't see the point of that. – tripleee Dec 29 '15 at 8:59
  • 1
    I don't feel we are communicating properly. I am challenging the usefulness over variable=$(bash -c 'echo "foo"; echo "bar"') over variable=$(echo "foo"; echo "bar") -- the here document is just a quoting mechanism and doesn't really add anything except another useless complication. – tripleee Dec 29 '15 at 9:08
  • 1
    When I use heredoc with ssh, I precise the command to run ssh -p $port $user@$domain /bin/bash <<EOF in order to prevent Pseudo-terminal will not be allocated because stdin is not a terminal. warning – F. Hauri Dec 20 '16 at 7:40

When setting a variable make sure you have NO Spaces before and/or after the = sign. Literally spent an hour trying to figure this, trying all kinds of solutions! This is Not cool.

Correct:

WTFF=`echo "stuff"`
echo "Example: $WTFF"

Will Fail with error: (stuff: not found or similar)

WTFF= `echo "stuff"`
echo "Example: $WTFF"
  • I didn't notice this earlier. Thanks :) – Ayyappa Sep 26 '17 at 4:07
  • The version with the space means something different: var=value somecommand runs somecommand with var in its environment having the value value. Thus, var= somecommand is exporting var in the environment of somecommand with an empty (zero-byte) value. – Charles Duffy yesterday

You need to use either

$(command-here)

or

`command-here`

example

#!/bin/bash

VAR1="$1"
VAR2="$2"

MOREF="$(sudo run command against "$VAR1" | grep name | cut -c7-)"

echo "$MOREF"

You can use back-ticks(also known as accent graves) or $(). Like as-

OUTPUT=$(x+2);
OUTPUT=`x+2`;

Both have the same effect. But OUTPUT=$(x+2) is more readable and the latest one.

  • 1
    bash: x+2: command not found – F. Hauri Dec 20 '16 at 7:36
  • 2
    Parenthesis was implemented in order to permit nesting. – F. Hauri Dec 20 '16 at 7:37

This is another way, good to use with some text editors that are unable to correctly highlight every intricate code you create.

read -r -d '' str < <(cat somefile.txt)
echo "${#str}"
echo "$str"
  • This doesn't deal with OP's question, which is really about command substitution, not process substitution. – codeforester Apr 24 at 2:01
  • @codeforester but did this work for you too? – Aquarius Power Apr 29 at 0:54

Some may find this useful. Integer values in variable substitution, where the trick is using $(()) double brackets:

N=3
M=3
COUNT=$N-1
ARR[0]=3
ARR[1]=2
ARR[2]=4
ARR[3]=1

while (( COUNT < ${#ARR[@]} ))
do
  ARR[$COUNT]=$((ARR[COUNT]*M))
  (( COUNT=$COUNT+$N ))
done
  • 1
    This does not seem to have any relevance for this question. It would be a reasonable answer if somebody were to ask how to multiply a number in an array by a constant factor, though I don't recall ever seeing anyone asking that (and then a for ((...)) loop would seem like a better match for the loop variable). Also, you should not use uppercase for your private variables. – tripleee Dec 28 '15 at 12:22
  • I disagree with the "relevance" part. The question clearly reads: How to set a variable equal to the output from a command in Bash? And I added this answer as a complement because I got here looking for a solution which helped me with the code I later posted. Regarding the uppercase vars, thanks for that. – Gus Dec 28 '15 at 13:38
  • 1
    So which command's output are you capturing here? – tripleee Dec 28 '15 at 15:30
  • 1
    This could be written ARR=(3 2 4 1);for((N=3,M=3,COUNT=N-1;COUNT < ${#ARR[@]};ARR[COUNT]*=M,COUNT+=N)){ :;} but I agree with @tripleee: I don't understand what do this, there! – F. Hauri Dec 20 '16 at 7:25
  • @F.Hauri... bash is getting more & more like perl the deeper you go into it! – ropata Nov 7 '17 at 23:22

Here are two more ways:

Please keep in mind that space is very important in . So, if you want your command to run, use as is without introducing any more spaces.

  1. following assigns harshil to L and then prints it

    L=$"harshil"
    echo "$L"
    
  2. following assigns the output of the command tr to L2. tr is being operated on another variable L1.

    L2=$(echo "$L1" | tr [:upper:] [:lower:])
    

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