How can I check if a variable is empty in Bash?

10 Answers 10

up vote 344 down vote accepted

In bash at least the following command tests if $var is empty:

if [[ -z "$var" ]]; then
   #do what you want
fi

The command man test is your friend.

  • 56
    double square brackets are useless here. it may be simple [ -z "$var" ] or even easier imho if test -z "var" .. anyway +1 :) – Luca Borrione Aug 31 '12 at 20:15
  • 2
    double square brackets are not useless, if I do not inlcude I ma getting ./test.ksh[8]: test: argument expected dunnot the reason but single bracket didn't work but the double one had it. – gahlot.jaggs Oct 4 '13 at 7:24
  • 5
    @LucaBorrione I think you mean if test -z "$var", right? – neu242 Feb 20 '14 at 7:28
  • 1
    Just an added comment for a specific situation not directly mentioned in the question: if the variable is unset and the set -u option has been activated, this test will fail with unbound variable. In this case, you might prefer @alexli's solution. – anol May 26 '15 at 16:34
  • 3
    @LucaBorrione Just as a late side note: "[[" can be seen as "never useless"; as using "[[" has some advantages over "[" (see stackoverflow.com/questions/669452/… for example) – GhostCat Jun 1 '15 at 8:06

Presuming bash:

var=""

if [ -n "$var" ]; then
    echo "not empty"
else
    echo "empty"
fi
  • 9
    The more direct answer is -z: [[ -z "$an_unset_or_empty_var" ]] && echo empty – glenn jackman Jun 17 '10 at 12:02
  • 2
    @glenn jackman: good comment; it's true that -z is closer to what was asked. Jay has put this in his answer so I'll refrain from updating mine and leave this up as is. – ChristopheD Jun 17 '10 at 19:10

I have also seen

if [ "x$variable" = "x" ]; then ...

which is obviously very robust and shell independent.

Also, there is a difference between "empty" and "unset". See How to tell if a string is not defined in a bash shell script?.

  • Looks strange to me. Could you please explain this solution. Thank you. – guettli Nov 12 '15 at 9:57
  • 1
    @guettli: If $variable is empty, then the string to the left of the comparison operator becomes only x, which is then equal to the string to the right of the operator. [ x = x ] is "true", so in practice this tests whether $variable is empty or not. As an addition (3½ years after the fact :-) ) I would never use this myself since -z does what I probably want in a clearer way, but I wanted to add this answer since this method is frequently seen "in the wild"; perhaps written this way on purpose by people who have had different experiences than I have. – Daniel Andersson Nov 12 '15 at 15:18
if [ ${foo:+1} ]
then
    echo "yes"
fi

prints yes if the variable is set. ${foo:+1} will return 1 when the variable is set, otherwise it will return empty string.

  • 2
    While not mentioned in the question, an important advantage of this answer is that it works even when the variable is undefined and the set -u option (nounset) is activated. Almost all other answers to this question will fail with unbound variable in this case. – anol May 26 '15 at 16:29
  • This :+ notation is also useful for situations where you have optional command line parameters that you have specified with optional variables. myprogram ${INFILE:+--in=$INFILE} ${OUTFILE:+--out=$OUTFILE} – Alan Porter Jul 24 at 19:59
[ "$variable" ] || echo empty
: ${variable="value_to_set_if_unset"}
  • Great way to default out a var, plus 1 – ehime Dec 10 '13 at 17:16
  • @ehime to make a default value you would use ${variable:-default_value} – warvariuc Nov 17 '15 at 9:25
if [[ "$variable" == "" ]] ...

The question asks how to check if a variable is an empty string and the best answers are already given for that.
But I landed here after a period passed programming in php and what I was actually searching was a check like the empty function in php working in a bash shell.
After reading the answers I realized I was not thinking properly in bash, but anyhow in that moment a function like empty in php would have been soooo handy in my bash code.
As I think this can happen to others, I decided to convert the php empty function in bash

According to the php manual:
a variable is considered empty if it doesn't exist or if its value is one of the following:

  • "" (an empty string)
  • 0 (0 as an integer)
  • 0.0 (0 as a float)
  • "0" (0 as a string)
  • an empty array
  • a variable declared, but without a value

Of course the null and false cases cannot be converted in bash, so they are omitted.

function empty
{
    local var="$1"

    # Return true if:
    # 1.    var is a null string ("" as empty string)
    # 2.    a non set variable is passed
    # 3.    a declared variable or array but without a value is passed
    # 4.    an empty array is passed
    if test -z "$var"
    then
        [[ $( echo "1" ) ]]
        return

    # Return true if var is zero (0 as an integer or "0" as a string)
    elif [ "$var" == 0 2> /dev/null ]
    then
        [[ $( echo "1" ) ]]
        return

    # Return true if var is 0.0 (0 as a float)
    elif [ "$var" == 0.0 2> /dev/null ]
    then
        [[ $( echo "1" ) ]]
        return
    fi

    [[ $( echo "" ) ]]
}



Example of usage:

if empty "${var}"
    then
        echo "empty"
    else
        echo "not empty"
fi



Demo:
the following snippet:

#!/bin/bash

vars=(
    ""
    0
    0.0
    "0"
    1
    "string"
    " "
)

for (( i=0; i<${#vars[@]}; i++ ))
do
    var="${vars[$i]}"

    if empty "${var}"
        then
            what="empty"
        else
            what="not empty"
    fi
    echo "VAR \"$var\" is $what"
done

exit

outputs:

VAR "" is empty
VAR "0" is empty
VAR "0.0" is empty
VAR "0" is empty
VAR "1" is not empty
VAR "string" is not empty
VAR " " is not empty

Having said that in a bash logic the checks on zero in this function can cause side problems imho, anyone using this function should evaluate this risk and maybe decide to cut those checks off leaving only the first one.

This will return true if a variable is unset or set to the empty string ("").

if [ -z "$MyVar" ]
then
   echo "The variable MyVar has nothing in it."
elif ! [ -z "$MyVar" ]
then
   echo "The variable MyVar has something in it."
fi
  • 3
    Why would you use elif ! instead of else? – ZiggyTheHamster Nov 18 '15 at 1:55
  • 1
    Just to make a distinction between the two statements, ie using ! [ -z "$MyVar" ] would mean that the variable would have something in it. But ideally one would use else. – 3kstc Jun 19 '17 at 23:14

You may want to distinguish between unset variables and variables that are set and empty:

is_empty() {
    local var_name="$1"
    local var_value="${!var_name}"
    if [[ -v "$var_name" ]]; then
       if [[ -n "$var_value" ]]; then
         echo "set and non-empty"
       else
         echo "set and empty"
       fi
    else
       echo "unset"
    fi
}

str="foo"
empty=""
is_empty str
is_empty empty
is_empty none

Result:

set and non-empty
set and empty
unset

BTW, I recommend using set -u which will cause an error when reading unset variables, this can save you from disasters such as

rm -rf $dir

You can read about this and other best practices for a "strict mode" here.

  • Thanks for the strict mode reference! – paulcm Aug 30 '16 at 10:23

To check if variable v is not set

if [ "$v" == "" ]; then
   echo "v not set"
fi

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