How do I know if a variable is set in Bash?

For example, how do I check if the user gave the first parameter to a function?

function a {
    # if $1 is set ?
}
  • 12
    if test $# -gt 0; then printf 'arg <%s>\n' "$@"; fi. – Jens Jul 9 '13 at 16:57
  • 157
    Note to solution-seekers: There are many highly-rated answers to this question that answer the question "is variable non-empty". The more correction solutions ("is variable set") are mentioned in answers by Jens and Lionel below. – Nathan Kidd Nov 29 '13 at 17:56
  • 5
    Also Russell Harmon and Seamus are correct with their -v test, although this is seemingly only available on new versions of bash and not portable across shells. – Graeme Jan 28 '14 at 17:58
  • 5
    As pointed out by @NathanKidd, correct solutions are given by Lionel and Jens. prosseek, you should switch your accepted answer to one of these. – Garrett Feb 13 '14 at 23:22
  • 3
    ... or the incorrect answer could be downvoted by the more discerning among us, since @prosseek is not addressing the problem. – dan3 Jul 15 '14 at 9:46

31 Answers 31

up vote 1725 down vote accepted

(Usually) The right way

if [ -z ${var+x} ]; then echo "var is unset"; else echo "var is set to '$var'"; fi

where ${var+x} is a parameter expansion which evaluates to nothing if var is unset, and substitutes the string x otherwise.

Quotes Digression

Quotes can be omitted (so we can say ${var+x} instead of "${var+x}") because this syntax & usage guarantees this will only expand to something that does not require quotes (since it either expands to x (which contains no word breaks so it needs no quotes), or to nothing (which results in [ -z ], which conveniently evaluates to the same value (true) that [ -z "" ] does as well)).

However, while quotes can be safely omitted, and it was not immediately obvious to all (it wasn't even apparent to the first author of this quotes explanation who is also a major Bash coder), it would sometimes be better to write the solution with quotes as [ -z "${var+x}" ], at the very small possible cost of an O(1) speed penalty. The first author also added this as a comment next to the code using this solution giving the URL to this answer, which now also includes the explanation for why the quotes can be safely omitted.

(Often) The wrong way

if [ -z "$var" ]; then echo "var is blank"; else echo "var is set to '$var'"; fi

This is often wrong because it doesn't distinguish between a variable that is unset and a variable that is set to the empty string. That is to say, if var='', then the above solution will output "var is blank".

The distinction between unset and "set to the empty string" is essential in situations where the user has to specify an extension, or additional list of properties, and that not specifying them defaults to a non-empty value, whereas specifying the empty string should make the script use an empty extension or list of additional properties.

The distinction may not be essential in every scenario though. In those cases [ -z "$var" ] will be just fine.

  • 18
    @Garrett, your edit has made this answer incorrect, ${var+x} is the correct substitution to use. Using [ -z ${var:+x} ] produces no different result than [ -z "$var" ]. – Graeme Feb 13 '14 at 22:08
  • 7
    This doesn't work. I'm getting "not set" regardless of whether var is set to a value or not (cleared with "unset var", "echo $var" produces no output). – Brent212 Sep 9 '14 at 22:04
  • 7
    For the solution's syntax ${parameter+word}, the official manual section is gnu.org/software/bash/manual/… ; however, a bug in that, it doesn't very clearly mention this syntax but says just quote(Omitting the colon[ ":"] results in a test only for a parameter that is unset. .. ${parameter:+word} [means] If parameter is null or unset, nothing is substituted, otherwise the expansion of word is substituted.); the cited ref pubs.opengroup.org/onlinepubs/9699919799/utilities/… (good to know)has much clearer docs here. – Destiny Architect Nov 8 '14 at 15:04
  • 22
    Using a simple [ -z $var ] is no more "wrong" than omitting quotes. Either way, you're making assumptions about your input. If you are fine treating an empty string as unset, [ -z $var ] is all you need. – N13 May 5 '16 at 20:09
  • 10
    It's not entirely clear why the +x is needed here – Alexander Mills Nov 25 '16 at 5:07

To check for non-null/non-zero string variable, i.e. if set, use

if [ -n "$1" ]

It's the opposite of -z. I find myself using -n more than -z.

You would use it like:

if [ -n "$1" ]; then
  echo "You supplied the first parameter!"
else
  echo "First parameter not supplied."
fi
  • 69
    I usually prefer [[ ]] over [ ], as [[ ]] is more powerfull and causes less problems in certain situations (see this question for an explanation of the difference between the two). The question specifically asks for a bash solution and doesn't mention any portability requirements. – Flow Oct 13 '13 at 15:26
  • 15
    The question is how one can see if a variable is set. Then you can't assume that the variable is set. – HelloGoodbye Nov 12 '13 at 13:15
  • 3
    I agree, [] works better especially for shell (non-bash) scripts. – Hengjie Jun 2 '14 at 13:09
  • 56
    Fails on set -u. – Ciro Santilli 新疆改造中心 六四事件 法轮功 Jun 10 '14 at 6:52
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    Note that -n is the default test, so more simply [ "$1" ] or [[ $1 ]] work as well. Also note that with [[ ]] quoting is unnecessary. – tne Nov 26 '14 at 13:49

Here's how to test whether a parameter is unset, or empty ("Null") or set with a value:

+--------------------+----------------------+-----------------+-----------------+
|                    |       parameter      |     parameter   |    parameter    |
|                    |   Set and Not Null   |   Set But Null  |      Unset      |
+--------------------+----------------------+-----------------+-----------------+
| ${parameter:-word} | substitute parameter | substitute word | substitute word |
| ${parameter-word}  | substitute parameter | substitute null | substitute word |
| ${parameter:=word} | substitute parameter | assign word     | assign word     |
| ${parameter=word}  | substitute parameter | substitute null | assign word     |
| ${parameter:?word} | substitute parameter | error, exit     | error, exit     |
| ${parameter?word}  | substitute parameter | substitute null | error, exit     |
| ${parameter:+word} | substitute word      | substitute null | substitute null |
| ${parameter+word}  | substitute word      | substitute word | substitute null |
+--------------------+----------------------+-----------------+-----------------+

Source: POSIX: Parameter Expansion:

In all cases shown with "substitute", the expression is replaced with the value shown. In all cases shown with "assign", parameter is assigned that value, which also replaces the expression.

  • 5
    @HelloGoodbye Yes it does work: set foo; echo ${1:-set but null or unset} echos "foo"; set --; echo ${1:-set but null or unset} echoes set but null ... – Jens Nov 27 '13 at 13:07
  • 4
    @HelloGoodbye The positional parameters can be set with, uh, set :-) – Jens Nov 28 '13 at 7:59
  • 64
    This answer is very confusing. Any practical examples on how to use this table? – Ben Davis Sep 27 '14 at 17:16
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    @BenDavis The details are explained in the link to the POSIX standard, which references the chapter the table is taken from. One construct I use in almost any script I write is : ${FOOBAR:=/etc/foobar.conf} to set a default value for a variable if it is unset or null. – Jens Mar 10 '15 at 11:08
  • 1
    parameter is any variable name. word is some string to substitute depending on which syntax in the table you are using, and whether the variable $parameter is set, set but null, or unset. Not to make things more complicated, but word can also include variables! This can be very useful for passing optional args separated by a character. For example: ${parameter:+,${parameter}} outputs a comma separated ,$parameter if it is set but not null. In this case, word is ,${parameter} – TrinitronX Jan 19 '16 at 23:30

There are many ways to do this with the following being one of them:

if [ -z "$1" ]

This succeeds if $1 is null or unset

  • 37
    There is a difference between an unset parameter and a parameter with a null value. – chepner Mar 11 '13 at 18:14
  • 19
    I just want to be pedantic and point out this is the opposite answer to what the question poses. The questions asks if the variable IS set, not if the variable is not set. – Philluminati Jun 3 '13 at 13:06
  • 44
    [[ ]] is nothing but a portability pitfall. if [ -n "$1" ] should be used here. – Jens Jul 9 '13 at 16:55
  • 69
    This answer is incorrect. The question asks for a way to tell whether a variable is set, not whether it's set to a non-empty value. Given foo="", $foo has a value, but -z will merely report that it's empty. And -z $foo will blow up if you have set -o nounset. – Keith Thompson Aug 5 '13 at 19:13
  • 18
    Note that if -u is set, this will result in an error. – Daniel C. Sobral Sep 11 '13 at 14:22

While most of the techniques stated here are correct, bash 4.2 supports an actual test for the presence of a variable (man bash), rather than testing the value of the variable.

[[ -v foo ]]; echo $?
# 1

foo=bar
[[ -v foo ]]; echo $?
# 0

foo=""
[[ -v foo ]]; echo $?
# 0
  • 7
    In bash 4.1.2, regardless of whether variable is set, [[ -v aaa ]]; echo $? ==> -bash: conditional binary operator expected -bash: syntax error near 'aaa' – Dan Oct 31 '13 at 9:52
  • 26
    The '-v' argument to the 'test' builtin was added in bash 4.2. – Ti Strga Jan 13 '14 at 17:19
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    the -v argument was added as a complement to the -u shell option (nounset). With 'nounset' turned on (set -u), the shell will return an error and terminate, if it is not interactive. $# was good for checking the positional parameters. However, named variables needed some other way, other than clobbering, to identifying them as unset. It is unfortunate that this feature has come so late because many are bound to being earlier-version compatible, in which case they can't use it. The only other option is to use tricks or 'hacks' to get around it as shown above but it is most inelegant. – osirisgothra Jul 14 '14 at 10:59
  • I think osirisgothra's remark about using $# for checking the positional parameters should be added to the answer. Unfortunately -v doesn't work with positional parameters (e.g. [[ -v 2 ]] is not the same as [[ $# -ge 2 ]]), at least in my bash 4.3.11. – Jaan Sep 2 '16 at 23:40
  • 1
    This is why I keep reading after the accepted/highest-voted answer. – Joe Jul 24 at 20:16

To see if a variable is nonempty, I use

if [[ $var ]]; then ...       # `$var' expands to a nonempty string

The opposite tests if a variable is either unset or empty:

if [[ ! $var ]]; then ...     # `$var' expands to the empty string (set or not)

To see if a variable is set (empty or nonempty), I use

if [[ ${var+x} ]]; then ...   # `var' exists (empty or nonempty)
if [[ ${1+x} ]]; then ...     # Parameter 1 exists (empty or nonempty)

The opposite tests if a variable is unset:

if [[ ! ${var+x} ]]; then ... # `var' is not set at all
if [[ ! ${1+x} ]]; then ...   # We were called with no arguments
  • I too have been using this for a while; just in a reduced way: [ $isMac ] && param="--enable-shared" – user1985657 Nov 30 '14 at 11:39
  • @Bhaskar I think it's because this answer already provided the essentially the same answer (use ${variable+x} to get x iff $variable is set) almost half a year earlier. Also it has much more detail explaining why it's right. – Mark Haferkamp Feb 16 at 8:06

I always find the POSIX table in the other answer slow to grok, so here's my take on it:

   +----------------------+------------+-----------------------+-----------------------+
   |   if VARIABLE is:    |    set     |         empty         |        unset          |
   +----------------------+------------+-----------------------+-----------------------+
 - |  ${VARIABLE-default} | $VARIABLE  |          ""           |       "default"       |
 = |  ${VARIABLE=default} | $VARIABLE  |          ""           | $(VARIABLE="default") |
 ? |  ${VARIABLE?default} | $VARIABLE  |          ""           |       exit 127        |
 + |  ${VARIABLE+default} | "default"  |       "default"       |          ""           |
   +----------------------+------------+-----------------------+-----------------------+
:- | ${VARIABLE:-default} | $VARIABLE  |       "default"       |       "default"       |
:= | ${VARIABLE:=default} | $VARIABLE  | $(VARIABLE="default") | $(VARIABLE="default") |
:? | ${VARIABLE:?default} | $VARIABLE  |       exit 127        |       exit 127        |
:+ | ${VARIABLE:+default} | "default"  |          ""           |          ""           |
   +----------------------+------------+-----------------------+-----------------------+

Note that each group (with and without preceding colon) has the same set and unset cases, so the only thing that differs is how the empty cases are handled.

With the preceding colon, the empty and unset cases are identical, so I would use those where possible (i.e. use :=, not just =, because the empty case is inconsistent).

Headings:

  • set means VARIABLE is non-empty (VARIABLE="something")
  • empty means VARIABLE is empty/null (VARIABLE="")
  • unset means VARIABLE does not exist (unset VARIABLE)

Values:

  • $VARIABLE means the result is the original value of the variable.
  • "default" means the result was the replacement string provided.
  • "" means the result is null (an empty string).
  • exit 127 means the script stops executing with exit code 127.
  • $(VARIABLE="default") means the result is the original value of the variable and the replacement string provided is assigned to the variable for future use.
  • 1
    You fixed just the ones that are actual coding errors (instances of unwanted indirection when working with variables). I made an edit to fix a few more cases where the dollar makes a difference in interpreting the description. BTW, all shell variables (with the exception of arrays) are string variables; it may just happen that they contain a string that can be interpreted as a number. Talking about strings only fogs the message. Quotes have nothing to do with strings, they are just an alternative to escaping. VARIABLE="" could be written as VARIABLE=. Still, the former is more readable. – Palec Jun 18 '17 at 9:37
  • 1
    Ah, that makes it clearer - appreciate the advice! – deizel Jun 19 '17 at 3:25

On a modern version of Bash (4.2 or later I think; I don't know for sure), I would try this:

if [ ! -v SOMEVARIABLE ] #note the lack of a $ sigil
then
    echo "Variable is unset"
elif [ -z "$SOMEVARIABLE" ]
then
    echo "Variable is set to an empty string"
else
    echo "Variable is set to some string"
fi
  • 4
    Also note that [ -v "$VARNAME" ] is not incorrect, but simply performs a different test. Suppose VARNAME=foo; then it checks if there is a variable named foo that is set. – chepner Nov 8 '14 at 16:46
  • 4
    Note for those wanting portability, -v is not POSIX compliant – kzh Jan 2 '15 at 4:40
  • If one gets [: -v: unexpected operator, one has to ensure to use bash instead of sh. – koppor Mar 28 '17 at 12:26
if [ "$1" != "" ]; then
  echo \$1 is set
else
  echo \$1 is not set
fi

Although for arguments it is normally best to test $#, which is the number of arguments, in my opinion.

if [ $# -gt 0 ]; then
  echo \$1 is set
else
  echo \$1 is not set
fi
  • 1
    The first test is backward; I think you want [ "$1" != "" ] (or [ -n "$1" ])... – Gordon Davisson Aug 30 '10 at 16:40
  • @Gordon, fixed! – Paul Creasey Aug 30 '10 at 16:44
  • 9
    This will fail if $1 is set to the empty string. – HelloGoodbye Nov 27 '13 at 20:56
  • 1
    The second part of the answer (counting parameters) is a useful workaround for the first part of the answer not working when $1 is set to an empty string. – Mark Berry Jul 30 '14 at 14:32
  • This will fail if set -o nounset is on. – Flimm May 15 '15 at 13:53

Read the "Parameter Expansion" section of the bash man page. Parameter expansion doesn't provide a general test for a variable being set, but there are several things you can do to a parameter if it isn't set.

For example:

function a {
    first_arg=${1-foo}
    # rest of the function
}

will set first_arg equal to $1 if it is assigned, otherwise it uses the value "foo". If a absolutely must take a single parameter, and no good default exists, you can exit with an error message when no parameter is given:

function a {
    : ${1?a must take a single argument}
    # rest of the function
}

(Note the use of : as a null command, which just expands the values of its arguments. We don't want to do anything with $1 in this example, just exit if it isn't set)

  • 1
    I'm baffled that none of the other answers mention the simple and elegant : ${var?message}. – tripleee Sep 12 '15 at 6:33

You want to exit if it's unset

This worked for me. I wanted my script to exit with an error message if a parameter wasn't set.

#!/usr/bin/env bash

set -o errexit

# Get the value and empty validation check all in one
VER="${1:?You must pass a version of the format 0.0.0 as the only argument}"

This returns with an error when it's run

peek@peek:~$ ./setver.sh
./setver.sh: line 13: 1: You must pass a version of the format 0.0.0 as the only argument

Check only, no exit - Empty and Unset are INVALID

Try this option if you just want to check if the value set=VALID or unset/empty=INVALID.

TSET="good val"
TEMPTY=""
unset TUNSET

if [ "${TSET:-}" ]; then echo "VALID"; else echo "INVALID";fi
# VALID
if [ "${TEMPTY:-}" ]; then echo "VALID"; else echo "INVALID";fi
# INVALID
if [ "${TUNSET:-}" ]; then echo "VALID"; else echo "INVALID";fi
# INVALID

Or, Even short tests ;-)

[ "${TSET:-}"   ] && echo "VALID" || echo "INVALID"
[ "${TEMPTY:-}" ] && echo "VALID" || echo "INVALID"
[ "${TUNSET:-}" ] && echo "VALID" || echo "INVALID"

Check only, no exit - Only empty is INVALID

And this is the answer to the question. Use this if you just want to check if the value set/empty=VALID or unset=INVALID.

NOTE, the "1" in "..-1}" is insignificant, it can be anything (like x)

TSET="good val"
TEMPTY=""
unset TUNSET

if [ "${TSET+1}" ]; then echo "VALID"; else echo "INVALID";fi
# VALID
if [ "${TEMPTY+1}" ]; then echo "VALID"; else echo "INVALID";fi
# VALID
if [ "${TUNSET+1}" ]; then echo "VALID"; else echo "INVALID";fi
# INVALID

Short tests

[ "${TSET+1}"   ] && echo "VALID" || echo "INVALID"
[ "${TEMPTY+1}" ] && echo "VALID" || echo "INVALID"
[ "${TUNSET+1}" ] && echo "VALID" || echo "INVALID"

I dedicate this answer to @mklement0 (comments) who challenged me to answer the question accurately.

Reference http://pubs.opengroup.org/onlinepubs/9699919799/utilities/V3_chap02.html#tag_18_06_02

To check whether a variable is set with a non-empty value, use [ -n "$x" ], as others have already indicated.

Most of the time, it's a good idea to treat a variable that has an empty value in the same way as a variable that is unset. But you can distinguish the two if you need to: [ -n "${x+set}" ] ("${x+set}" expands to set if x is set and to the empty string if x is unset).

To check whether a parameter has been passed, test $#, which is the number of parameters passed to the function (or to the script, when not in a function) (see Paul's answer).

In bash you can use -v inside the [[ ]] builtin:

#! /bin/bash -u

if [[ ! -v SOMEVAR ]]; then
    SOMEVAR='hello'
fi

echo $SOMEVAR

For those that are looking to check for unset or empty when in a script with set -u:

if [ -z "${var-}" ]; then
   echo "Must provide var environment variable. Exiting...."
   exit 1
fi

The regular [ -z "$var" ] check will fail with var; unbound variable if set -u but [ -z "${var-}" ] expands to empty string if var is unset without failing.

  • You are missing a colon. It should be ${var:-}, not ${var-}. But in Bash, I can confirm it works even without the colon. – Palec Nov 16 '16 at 14:27
  • 2
    ${var:-} and ${var-} mean different things. ${var:-} will expand to empty string if var unset or null and ${var-} will expand to empty string only if unset. – ecerulm Nov 16 '16 at 14:38
  • Just learned something new, thanks! Omitting the colon results in a test only for a parameter that is unset. Put another way, if the colon is included, the operator tests for both parameter’s existence and that its value is not null; if the colon is omitted, the operator tests only for existence. It makes no difference here, but good to know. – Palec Nov 16 '16 at 15:01

You can do:

function a {
        if [ ! -z "$1" ]; then
                echo '$1 is set'
        fi
}
  • 7
    Or you could do -n and not negate the -z. – Dennis Williamson Aug 30 '10 at 17:20
  • 1
    you need quotes around $1, i.e., [ ! -z "$1" ]. Or you can write [[ ! -z $1 ]] in bash/ksh/zsh. – Gilles Aug 31 '10 at 7:21
  • 5
    This will fail if $1 is set to the empty string. – HelloGoodbye Nov 27 '13 at 20:56

The answers above do not work when Bash option set -u is enabled. Also, they are not dynamic, e.g., how to test is variable with name "dummy" is defined? Try this:

is_var_defined()
{
    if [ $# -ne 1 ]
    then
        echo "Expected exactly one argument: variable name as string, e.g., 'my_var'"
        exit 1
    fi
    # Tricky.  Since Bash option 'set -u' may be enabled, we cannot directly test if a variable
    # is defined with this construct: [ ! -z "$var" ].  Instead, we must use default value
    # substitution with this construct: [ ! -z "${var:-}" ].  Normally, a default value follows the
    # operator ':-', but here we leave it blank for empty (null) string.  Finally, we need to
    # substitute the text from $1 as 'var'.  This is not allowed directly in Bash with this
    # construct: [ ! -z "${$1:-}" ].  We need to use indirection with eval operator.
    # Example: $1="var"
    # Expansion for eval operator: "[ ! -z \${$1:-} ]" -> "[ ! -z \${var:-} ]"
    # Code  execute: [ ! -z ${var:-} ]
    eval "[ ! -z \${$1:-} ]"
    return $?  # Pedantic.
}

Related: In Bash, how do I test if a variable is defined in "-u" mode

  • 1
    I'd like to know so much why this answer was downvoted... Works great for me. – LavaScornedOven Dec 17 '14 at 13:07
  • In Bash, you could do the same without an eval: change eval "[ ! -z \${$1:-} ]" to indirect evaluation: [ ! -z ${!1:-} ];. – user2350426 Nov 29 '15 at 20:03
  • @BinaryZebra: Interesting idea. I suggest you post as a separate answer. – kevinarpe Nov 30 '15 at 0:39
  • Using "eval" makes this solution vulnerable to code injection: $ is_var_defined 'x} ]; echo "gotcha" >&2; #' gotcha – tetsujin May 11 '17 at 13:14

Using [[ -z "$var" ]] is the easiest way to know if a variable was set or not, but that option -z doesn't distinguish between an unset variable and a variable set to an empty string:

$ set=''
$ [[ -z "$set" ]] && echo "Set" || echo "Unset" 
Unset
$ [[ -z "$unset" ]] && echo "Set" || echo "Unset"
Unset

It's best to check it according to the type of variable: env variable, parameter or regular variable.

For a env variable:

[[ $(env | grep "varname=" | wc -l) -eq 1 ]] && echo "Set" || echo "Unset"

For a parameter (for example, to check existence of parameter $5):

[[ $# -ge 5 ]] && echo "Set" || echo "Unset"

For a regular variable (using an auxiliary function, to do it in an elegant way):

function declare_var {
   declare -p "$1" &> /dev/null
   return $?
}
declare_var "var_name" && echo "Set" || echo "Unset"

Notes:

  • $#: says you the number of positional parameters.
  • declare -p: gives you the definition of the variable passed as a parameter. If it exists, returns 0, if not, returns 1 and prints an error message.
  • $?: gives you the status code of the last executed command.

In a shell you can use the -z operator which is True if the length of string is zero.

A simple one-liner to set default MY_VAR if it's not set, otherwise optionally you can display the message:

[[ -z "$MY_VAR" ]] && MY_VAR="default"
[[ -z "$MY_VAR" ]] && MY_VAR="default" || echo "Variable already set."

My prefered way is this:

$var=10
$if ! ${var+false};then echo "is set";else echo "NOT set";fi
is set
$unset var
$if ! ${var+false};then echo "is set";else echo "NOT set";fi
NOT set

So basically, if a variable is set, it becomes "a negation of the resulting false" (what will be true = "is set").

And, if it is unset, it will become "a negation of the resulting true" (as the empty result evaluates to true) (so will end as being false = "NOT set").

if [[ ${1:+isset} ]]
then echo "It was set and not null." >&2
else echo "It was not set or it was null." >&2
fi

if [[ ${1+isset} ]]
then echo "It was set but might be null." >&2
else echo "It was was not set." >&2
fi
  • $1, $2 and up to $N is always set. Sorry, this is fail. – Zlatan Nov 18 '13 at 14:45
  • @ZDroid Try it: gist.github.com/solidsnack/7559844 – solidsnack Nov 20 '13 at 8:43
  • I tried it, and it didn't work, maybe my bash version lacks support for that. Idk, sorry if I'm wrong. :) – Zlatan Nov 20 '13 at 18:53

I found a (much) better code to do this if you want to check for anything in $@.

if [[ $1 = "" ]]
then
  echo '$1 is blank'
else
  echo '$1 is filled up'
fi

Why this all? Everything in $@ exists in Bash, but by default it's blank, so test -z and test -n couldn't help you.

Update: You can also count number of characters in a parameters.

if [ ${#1} = 0 ]
then
  echo '$1 is blank'
else
  echo '$1 is filled up'
fi
  • With set -o errexit this might not work so well... – solidsnack Nov 29 '13 at 22:42
  • I know, but that's it. If something is empty you'll get an error! Sorry. :P – Zlatan Nov 30 '13 at 16:47
[[ $foo ]]

Or

(( ${#foo} ))

Or

let ${#foo}

Or

declare -p foo
if [[ ${!xx[@]} ]] ; then echo xx is defined; fi
  • 10
    Welcome to StackOverflow. While your answer is appreciated, it's best to give more than just code. Could you add reasoning to your answer or a small explanation? See this page for other ideas on expanding your answer. – Celeo Feb 11 '15 at 20:58

I always use this one, based on the fact that it seems easy to be understood by anybody who sees the code for the very first time:

if [ "$variable" = "" ]
    then
    echo "Variable X is empty"
fi

And, if wanting to check if not empty;

if [ ! "$variable" = "" ]
    then
    echo "Variable X is not empty"
fi

That's it.

  • 4
    The question asks how to check if a variable is set, not if a variable is empty. – HelloGoodbye Nov 27 '13 at 20:45
  • You probably need to use [[ ... ]] instead of [ ... ]. The latter is actually an external command and wouldn't have any visibility into whether a variable is set or not. – solidsnack Nov 29 '13 at 22:41

This is what I use every day:

#
# Check if a variable is set
#   param1  name of the variable
#
function is_set()
{
    [[ -n "${1}" ]] && test -n "$(eval "echo "\${${1}+x}"")"
}

This works well under Linux and Solaris down to bash 3.0.

bash-3.00$ myvar="TEST"
bash-3.00$ is_set myvar ; echo $?
0
bash-3.00$ mavar=""
bash-3.00$ is_set myvar ; echo $?
0
bash-3.00$ unset myvar
bash-3.00$ is_set myvar ; echo $?
1
  • 1
    Since Bash 2.0+ Indirect expansion is available. You could replace the long and complex (with an eval also included) test -n "$(eval "echo "\${${1}+x}"")" for the equivalent: [[ ${!1+x} ]] – user2350426 Nov 29 '15 at 20:26

If var can be an array, then [ -z "${var+x}" ] parameter substitution is incorrect. To be really sure in Bash you need to use array syntax like [ "${#var[@]}" = 0 ], as shown below.

is-var-set () {
    results="\${var+x}=${var+x}\t\${#var[@]}=${#var[@]}"
    if [ -z "${var+x}" ] && [ "${#var[@]}" = 0 ]; then
        echo -e "$1: var's unset.\t$results"
    elif [ -n "${var+x}" ] && [ "${#var[@]}" != 0 ]; then
        echo -e "$1: var is set. \t$results"
    else
        echo -e "$1: Is var set? \t$results"
    fi
    unset var # so we don't have to do it everywhere else
}

In almost all cases, they agree. The only situation I've found where the array method is more accurate is when the variable is a non-empty array with position 0 unset (e.g., in tests 7 and A below). This disagreement comes from $var being shorthand for ${var[0]}, so [ -z "${var+x}" ] isn't checking the whole array.

Here are my test cases.

unset var;      is-var-set 1 # var unset
var='';         is-var-set 2 # var[0] set to ''
var=foo;        is-var-set 3 # var[0] set to 'foo'
var=();         is-var-set 4 # var unset (all indices)
var=(foo);      is-var-set 5 # var[0] set to 'foo'
var=([0]=foo);  is-var-set 6 # var[0] set to 'foo'
var=([1]=foo);  is-var-set 7 # var[0] unset, but var[1] set to 'foo'
declare -a var; is-var-set 8 # var empty, but declared as an array
declare -A var; is-var-set 9 # var empty, but declared as an associative array
declare -A var  # Because is-var-set() conveniently unsets it
var=([xz]=foo); is-var-set A # var[xz] set to 'foo', but var's otherwise empty
declare -a var  # Demonstrate that Bash knows about var, even when there's
declare -A var; is-var-set B # apparently no way to just _check_ its existence

Here's the output.

1: var's unset. ${var+x}=       ${#var[@]}=0
2: var is set.  ${var+x}=x      ${#var[@]}=1
3: var is set.  ${var+x}=x      ${#var[@]}=1
4: var's unset. ${var+x}=       ${#var[@]}=0
5: var is set.  ${var+x}=x      ${#var[@]}=1
6: var is set.  ${var+x}=x      ${#var[@]}=1
7: Is var set?  ${var+x}=       ${#var[@]}=1
8: var's unset. ${var+x}=       ${#var[@]}=0
9: var's unset. ${var+x}=       ${#var[@]}=0
A: Is var set?  ${var+x}=       ${#var[@]}=1
./foo.sh: line 26: declare: var: cannot convert indexed to associative array
B: var's unset. ${var+x}=       ${#var[@]}=0

In sum:

  • ${var+x} parameter expansion syntax works just as well as ${#var[@]} array syntax in most cases, such as checking parameters to functions. The only way this case could break is if a future version of Bash adds a way to pass arrays to functions without converting contents to individual arguments.
  • Array syntax is required for non-empty arrays (associative or not) with element 0 unset.
  • Neither syntax explains what's going on if declare -a var has been used without assigning even a null value somewhere in the array. Bash still distinguishes the case somewhere (as seen in test B above), so this answer's not foolproof. Fortunately Bash converts exported environment variables into strings when running a program/script, so any issues with declared-but-unset variables will be contained to a single script, at least if it's not sourcing other scripts.

If you wish to test that a variable is bound or unbound, this works well, even after you've turned on the nounset option:

set -o noun set

if printenv variableName >/dev/null; then
    # variable is bound to a value
else
    # variable is unbound
fi
  • I think you mean set -o nounset, not set -o noun set. This only works for variables that have been exported. It also changes your settings in a way that's awkward to undo. – Keith Thompson Aug 5 '13 at 19:10

I like auxiliary functions to hide the crude details of bash. In this case, doing so adds even more (hidden) crudeness:

# The first ! negates the result (can't use -n to achieve this)
# the second ! expands the content of varname (can't do ${$varname})
function IsDeclared_Tricky
{
  local varname="$1"
  ! [ -z ${!varname+x} ]
}

Because I first had bugs in this implementation (inspired by the answers of Jens and Lionel), I came up with a different solution:

# Ask for the properties of the variable - fails if not declared
function IsDeclared()
{
  declare -p $1 &>/dev/null
}

I find it to be more straight-forward, more bashy and easier to understand/remember. Test case shows it is equivalent:

function main()
{
  declare -i xyz
  local foo
  local bar=
  local baz=''

  IsDeclared_Tricky xyz; echo "IsDeclared_Tricky xyz: $?"
  IsDeclared_Tricky foo; echo "IsDeclared_Tricky foo: $?"
  IsDeclared_Tricky bar; echo "IsDeclared_Tricky bar: $?"
  IsDeclared_Tricky baz; echo "IsDeclared_Tricky baz: $?"

  IsDeclared xyz; echo "IsDeclared xyz: $?"
  IsDeclared foo; echo "IsDeclared foo: $?"
  IsDeclared bar; echo "IsDeclared bar: $?"
  IsDeclared baz; echo "IsDeclared baz: $?"
}

main

The test case also shows that local var does NOT declare var (unless followed by '='). For quite some time I thought i declared variables this way, just to discover now that i merely expressed my intention... It's a no-op, i guess.

IsDeclared_Tricky xyz: 1
IsDeclared_Tricky foo: 1
IsDeclared_Tricky bar: 0
IsDeclared_Tricky baz: 0
IsDeclared xyz: 1
IsDeclared foo: 1
IsDeclared bar: 0
IsDeclared baz: 0

BONUS: usecase

I mostly use this test to give (and return) parameters to functions in a somewhat "elegant" and safe way (almost resembling an interface...):

#auxiliary functions
function die()
{
  echo "Error: $1"; exit 1
}

function assertVariableDeclared()
{
  IsDeclared "$1" || die "variable not declared: $1"
}

function expectVariables()
{
  while (( $# > 0 )); do
    assertVariableDeclared $1; shift
  done
}

# actual example
function exampleFunction()
{
  expectVariables inputStr outputStr
  outputStr="$inputStr world!"
}

function bonus()
{
  local inputStr='Hello'
  local outputStr= # remove this to trigger error
  exampleFunction
  echo $outputStr
}

bonus

If called with all requires variables declared:

Hello world!

else:

Error: variable not declared: outputStr

Functions to check if variable is declared/unset

including empty $array=()


The following functions test if the given name exists as a variable

# The first parameter needs to be the name of the variable to be checked.
# (See example below)

var_is_declared() {
    { [[ -n ${!1+anything} ]] || declare -p $1 &>/dev/null;}
}

var_is_unset() {
    { [[ -z ${!1+anything} ]] && ! declare -p $1 &>/dev/null;} 
}
  • By first testing if the variable is (un)set, the call to declare can be avoided, if not necessary.
  • If however $1 contains the name of an empty $array=(), the call to declare would make sure we get the right result
  • There's never much data passed to /dev/null as declare is only called if either the variable is unset or an empty array.

This functions would test as showed in the following conditions:

a;       # is not declared
a=;      # is declared
a="foo"; # is declared
a=();    # is declared
a=("");  # is declared
unset a; # is not declared

a;       # is unset
a=;      # is not unset
a="foo"; # is not unset
a=();    # is not unset
a=("");  # is not unset
unset a; # is unset

.

For more details

and a test script see my answer to the question "How do I check if a variable exists in bash?".

Remark: The similar usage of declare -p, as it is also shown by Peregring-lk's answer, is truly coincidental. Otherwise I would of course have credited it!

case "$1" in
 "") echo "blank";;
 *) echo "set"
esac
  • 3
    This will fail if $1 is set to the empty string. – HelloGoodbye Nov 27 '13 at 20:58

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