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I am working on a simple scripting project for work that involves the use of Bash. I have a pretty simple script that is something like the following:

#!/bin/bash

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

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?

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10 Answers 10

up vote 782 down vote accepted

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

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

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

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35  
Can we provide some separator for multi line output ? – Aryan Feb 21 '13 at 12:26
22  
FYI This is called "command substitution": gnu.org/software/bash/manual/bashref.html#Command-Substitution – David Doria Jan 24 '14 at 18:35
4  
White space (or lack of whitespace) matters – Ali Apr 24 '14 at 10:40
2  
@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
2  
Ah thanks! So is there any benefit to the curly braces? – timhc22 Apr 21 '15 at 16:01

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
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5  
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
3  
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 at 11:07
    
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 at 12:42

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.

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5  
+1 for shell availability caveats. – msanford May 9 '14 at 21:08
9  
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
8  
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

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
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Just to be different:

MOREF=$(sudo run command against $VAR1 | grep name | cut -c7-)
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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
)"
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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
    
@tripleee heredoc means something more than that. You can do the same with some other commands like ssh sudo -s executing mysql commands inside, etc.. (instead of bash) – Jahid Dec 29 '15 at 9:05
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

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"
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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.

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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
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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
    
So which command's output are you capturing here? – tripleee Dec 28 '15 at 15:30

Here are two more ways: Please keep in mind space is very important in bash so if you want your command to run use as is without introducing anymore spaces.

  1. following assigns harshil to L and then prints it

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

    L2=$(echo "$L1" | tr [:upper:] [:lower:])
    
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1. $"..." probably doesn't do what you think it does. 2. This is already given in Andy Lester's answer. – gniourf_gniourf Jun 22 at 10:35

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