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If I want to check for the null string I would do

[ -z $mystr ]

but what if I want to check whether the variable has been defined at all? Or is there no distinction in bash scripting?

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18  
please be in the habit of using [ -z "$mystr" ] as opposed to [ -z $mystr ] –  Charles Duffy Oct 23 '08 at 4:46
    
how to do the inverse thing? I mean when the string is not null –  flow Jun 17 '11 at 15:46
1  
@flow: What about [ -n "${VAR+x}"] && echo not null –  Lekensteyn Aug 16 '11 at 17:49
1  
@CharlesDuffy I've read this before in a lot of online resources. Why is this preferred ? –  ffledgling Mar 3 '13 at 19:17
4  
@Ayos because if you don't have quotes, the content of the variable is string-split and globbed; if it's an empty string, it becomes [ -z ] instead of [ -z "" ]; if it has spaces, it becomes [ -z "my" "test" ] instead of [ -z my test ]; and if it's [ -z * ], then the * is replaced with the names of files in your directory. –  Charles Duffy Mar 3 '13 at 20:09

11 Answers 11

up vote 95 down vote accepted

I think the answer you are after is implied (if not stated) by Vinko's answer, though it is not spelled out simply. To distinguish whether VAR is set but empty or not set, you can use:

if [ -z "${VAR+xxx}" ]; then echo VAR is not set at all; fi
if [ -z "$VAR" ] && [ "${VAR+xxx}" = "xxx" ]; then echo VAR is set but empty; fi

You probably can combine the two tests on the second line into one with:

if [ -z "$VAR" -a "${VAR+xxx}" = "xxx" ]; then echo VAR is set but empty; fi

However, if you read the documentation for Autoconf, you'll find that they do not recommend combining terms with '-a' and do recommend using separate simple tests combined with &&. I've not encountered a system where there is a problem; that doesn't mean they didn't used to exist (but they are probably extremely rare these days, even if they weren't as rare in the distant past).


I was recently asked by email about this answer with the question:

You use two tests, and I understand the second one well, but not the first one. More precisely I don't understand the need for variable expansion

if [ -z "${VAR+xxx}" ]; then echo VAR is not set at all; fi

Wouldn't this accomplish the same?

if [ -z "${VAR}" ]; then echo VAR is not set at all; fi

Fair question - the answer is 'No, your simpler alternative does not do the same thing'.

Suppose I write this before your test:

VAR=

Your test will say "VAR is not set at all", but mine will say (by implication because it echoes nothing) "VAR is set but its value might be empty". Try this script:

(
unset VAR
if [ -z "${VAR+xxx}" ]; then echo JL:1 VAR is not set at all; fi
if [ -z "${VAR}" ];     then echo MP:1 VAR is not set at all; fi
VAR=
if [ -z "${VAR+xxx}" ]; then echo JL:2 VAR is not set at all; fi
if [ -z "${VAR}" ];     then echo MP:2 VAR is not set at all; fi
)

The output is:

JL:1 VAR is not set at all
MP:1 VAR is not set at all
MP:2 VAR is not set at all

In the second pair of tests, the variable is set, but it is set to the empty value. This is the distinction that the ${VAR=value} and ${VAR:=value} notations make. Ditto for ${VAR-value} and ${VAR:-value}, and ${VAR+value} and ${VAR:+value}, and so on.


As Gili points out in his answer, if you run bash with the set -o nounset option, then the basic answer above fails with unbound variable. It is easily remedied:

if [ -z "${VAR+xxx}" ]; then echo VAR is not set at all; fi
if [ -z "${VAR-}" ] && [ "${VAR+xxx}" = "xxx" ]; then echo VAR is set but empty; fi

Or you could cancel the set -o nounset option with set +u (set -u being equivalent to set -o nounset).

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7  
The only problem I have with this answer is that it accomplishes its task in a rather indirect and unclear fashion. –  Swiss Oct 1 '11 at 1:17
3  
For those whose want to look for the description of what the above means in the bash man page, look for the section "Parameter Expansion" and then for this text: "When not performing substring expansion, using the forms documented below, bash tests for a parameter that is unset or null ['null' meaning the empty string]. Omitting the colon results in a test only for a parameter that is unset (...) ${parameter:+word} : Use Alternate Value. If parameter is null or unset, nothing is substituted, otherwise the expansion of word is substituted." –  David Tonhofer Apr 26 '12 at 11:01
2  
@Swiss This is neither unclear nor indirect, but idiomatic. Perhaps to a programmer unfamiliar with ${+} and ${-} it is unclear, but familiarity with those constructs is essential if one is to be a competent user of the shell. –  William Pursell Oct 18 '12 at 22:46
    
See stackoverflow.com/a/20003892/14731 if you want to implement this with set -o nounset enabled. –  Gili Nov 15 '13 at 14:55
~> if [ -z $FOO ]; then echo "EMPTY"; fi
EMPTY
~> FOO=""
~> if [ -z $FOO ]; then echo "EMPTY"; fi
EMPTY
~> FOO="a"
~> if [ -z $FOO ]; then echo "EMPTY"; fi
~>

-z works for undefined variables too. To distinguish between an undefined and a defined you'd use the things listed here or, with clearer explanations, here.

Cleanest way is using expansion like in these examples. To get all your options check the Parameter Expansion section of the manual.

Alternate word:

~$ unset FOO
~$ if test ${FOO+defined}; then echo "DEFINED"; fi
~$ FOO=""
~$ if test ${FOO+defined}; then echo "DEFINED"; fi
DEFINED

Default value:

~$ FOO=""
~$ if test "${FOO-default value}" ; then echo "UNDEFINED"; fi
~$ unset FOO
~$ if test "${FOO-default value}" ; then echo "UNDEFINED"; fi
UNDEFINED

Of course you'd use one of these differently, putting the value you want instead of 'default value' and using the expansion directly, if appropriate.

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But I want to distinguish between whether the string is "" or hasn't been defined ever. Is that possible? –  SetJmp Oct 23 '08 at 4:32
1  
this answer does tell how to distinguish between those two cases; follow the bash faq link it provides for more discussion. –  Charles Duffy Oct 23 '08 at 4:45
1  
I added that after his comment, Charles –  Vinko Vrsalovic Oct 23 '08 at 4:52
2  
Look up "Parameter Expansion" in the bash man page for all these "tricks". E.g. ${foo:-default} to use a default value, ${foo:=default} to assign the default value, ${foo:?error message} to display an error message if foo is unset, etc. –  Jouni K. Seppänen Oct 23 '08 at 4:54

Advanced bash scripting guide, 10.2. Parameter Substitution:

  • ${var+blahblah}: if var is defined, 'blahblah' is substituted for the expression, else null is substituted
  • ${var-blahblah}: if var is defined, it is itself substituted, else 'blahblah' is substituted
  • ${var?blahblah}: if var is defined, it is substituted, else the function exists with 'blahblah' as an error message.


to base your program logic on whether the variable $mystr is defined or not, you can do the following:

isdefined=0
${mystr+ export isdefined=1}

now, if isdefined=0 then the variable was undefined, if isdefined=1 the variable was defined

This way of checking variables is better than the above answer because it is more elegant, readable, and if your bash shell was configured to error on the use of undefined variables (set -u), the script will terminate prematurely.


Other useful stuff:

to have a default value of 7 assigned to $mystr if it was undefined, and leave it intact otherwise:

mystr=${mystr- 7}

to print an error message and exit the function if the variable is undefined:

: ${mystr? not defined}

Beware here that I used ':' so as not to have the contents of $mystr executed as a command in case it is defined.

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I did not know about the ? syntax for BASH variables. That's a nice catch. –  Swiss Oct 1 '11 at 1:40
    
This works also with indirect variable references. This passes: var= ; varname=var ; : ${!varname?not defined} and this terminates: varname=var ; : ${!varname?not defined}. But it is a good habit to use set -u which does the same much easier. –  ceving Apr 5 '13 at 16:29

A summary of tests.

[ -n "$var" ] && echo "var is set and not empty"
[ -z "$var" ] && echo "var is unset or empty"
[ "${var+x}" = "x" ] && echo "var is set"  # may or may not be empty
[ -n "${var+x}" ] && echo "var is set"  # may or may not be empty
[ -z "${var+x}" ] && echo "var is unset"
[ -z "${var-x}" ] && echo "var is set and empty"
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http://stackoverflow.com/a/9824943/14731 contains a better answer (one that is more readable and works with set -o nounset enabled). It works roughly like this:

if [ -n "${VAR-}" ]; then
    echo "VAR is set and is not empty"
elif [ "${VAR+DEFINED_BUT_EMPTY}" = "DEFINED_BUT_EMPTY" ]; then
    echo "VAR is set, but empty"
else
    echo "VAR is not set"
fi
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another option: the "list array indices" expansion:

$ unset foo
$ foo=
$ echo ${!foo[*]}
0
$ foo=bar
$ echo ${!foo[*]}
0
$ foo=(bar baz)
$ echo ${!foo[*]}
0 1

the only time this expands to the empty string is when foo is unset, so you can check it with the string conditional:

$ unset foo
$ [[ ${!foo[*]} ]]; echo $?
1
$ foo=
$ [[ ${!foo[*]} ]]; echo $?
0
$ foo=bar
$ [[ ${!foo[*]} ]]; echo $?
0
$ foo=(bar baz)
$ [[ ${!foo[*]} ]]; echo $?
0

should be available in any bash version >= 3.0

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not to shed this bike even further, but wanted to add

shopt -s -o nounset

is something you could add to the top of a script, which will error if variables aren't declared anywhere in the script. The message you'd see is unbound variable, but as others mention it won't catch an empty string or null value. To make sure any individual value isn't empty, we can test a variable as it's expanded with ${mystr:?}, also known as dollar sign expansion, which would error with parameter null or not set.

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Here is what I think is a much clearer way to check if a variable is defined:

var_defined() {
    local var_name=$1
    set | grep "^${var_name}=" 1>/dev/null
    return $?
}

Use it as follows:

if var_defined foo; then
    echo "foo is defined"
else
    echo "foo is not defined"
fi
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1  
Writing a function is not a bad idea; invoking grep is awful. Note that bash supports ${!var_name} as a way of getting the value of a variable whose name is specified in $var_name, so name=value; value=1; echo ${name} ${!name} yields value 1. –  Jonathan Leffler Nov 15 '13 at 15:46

The explicit way to check for a variable being defined would be:

[ -v mystr ]
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1  
Can't find this in any of the man pages (for bash or test) but it does work for me.. Any idea what versions this was added? –  Ash Berlin Nov 6 '13 at 17:24
    
It is documented in Conditional Expressions, referenced from the test operator in the tail end of the section Bourne Shell Builtins. I don't know when it was added, but it is not in the Apple version of bash (based on bash 3.2.51), so it is probably a 4.x feature. –  Jonathan Leffler Nov 15 '13 at 15:50
    
This doesn't work for me with GNU bash, version 4.1.2(1)-release (x86_64-redhat-linux-gnu). The error is -bash: [: -v: unary operator expected. Per a comment here, it requires at minimum bash 4.2 to work. –  A-B-B Apr 2 at 22:50

call set without any arguments.. it outputs all the vars defined..
the last ones on the list would be the ones defined in your script..
so you could pipe its output to something that could figure out what things are defined and whats not

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2  
I didn't down-vote this, but it is something of a sledgehammer to crack a rather small nut. –  Jonathan Leffler Oct 23 '08 at 17:24
    
I actually like this answer better than the accepted answer. It's clear what is being done in this answer. The accepted answer is wonky as hell. –  Swiss Oct 1 '11 at 0:42
    
It seems like this answer is more of a side-effect of the implementation of "set" than something that is desirable. –  Jonathan Morgan Jan 12 '12 at 1:35

I would think there is no distinction in bash scripting between a variable being null and not existing, given that "$VAR" returns the same result for both cases. In this case, the [ -z ] test should be adequate.

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