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I just discovered set -u in bash and it helped me find several previously unseen bugs. But I also have a scenario where I need to test if a variable is defined before computing some default value. The best I have come up with for this is:

if [ "${variable-undefined}" == undefined ]; then
    variable="$(...)"
fi

which works (as long as the variable doesn't have the string value undefined). I was wondering if there was a better way?

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possible duplicate of How to test if a variable is set in bash when using "set -o nounset" –  Gili Nov 15 '13 at 15:01

6 Answers 6

up vote 6 down vote accepted

What Doesn't Work: Test for Zero-Length Strings

You can test for undefined strings in a few ways. Using the standard test conditional looks like this:

# Test for zero-length string.
[ -z "$variable" ] || variable='foo'

This will not work with set -u, however.

What Works: Conditional Assignment

Alternatively, you can use conditional assignment, which is a more Bash-like way to do this. For example:

# Assign value if variable is unset or null.
: "${variable:=foo}"

Because of the way Bash handles expansion of this expression, you can safely use this with set -u without getting a "bash: variable: unbound variable" error.

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2  
If Ramon is really interested only in unset variables (i.e. assigned null value is ok), the : should be removed from the conditional assignment. –  choroba Jul 6 '12 at 12:47
    
@choroba but without the : you can't use it like a statement –  Ramon Jul 6 '12 at 14:51
1  
@Ramon: The second : :-) –  choroba Jul 6 '12 at 15:01
    
Oh yeah, you're right about that. –  Ramon Jul 6 '12 at 15:05
2  
@AndrewFerrier This question specifically refers to assigning a default value if the variable is unset; while there are valid use cases for testing if a variable is set without subsequently setting it, this question does not require it. –  chepner Nov 6 '14 at 14:20

This is what I've found works best for me, taking inspiration from the other answers:

if [ -z "${varname-}" ]; then
  ...
  varname=$(...)
fi
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1  
Best answer to the question IMHO. –  al. Jun 12 '13 at 10:02
    
Can someone explain why "${varname-}" and "${varname:-}" works? I am surprised the first works. –  kevinarpe Mar 19 '14 at 7:22
    
tldp.org/LDP/abs/html/parameter-substitution.html ${varname-} is a form of ${varname-default}. If varname is not set the default is returned, in this case an empty string. –  Aaron J Lang Apr 29 '14 at 10:16
    
The colon-free versions are described in a quick sentence in the man page just before the various operators are described. It's easy to miss. ${varname:-foo} expands to foo if varname is unset or set to the empty string; ${varname-foo} only expands to foo if varname is unset. –  chepner Nov 6 '14 at 14:15

The answers above 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: How to check if a variable is set in bash?

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In bash 4.2 and newer there is an explicit way to check whether a variable is set, which is to use -v. The example from the question could then be implemented like this:

if [[ ! -v variable ]]; then
   variable="$(...)"
fi

See http://www.gnu.org/software/bash/manual/bashref.html#Bash-Conditional-Expressions

If you only want to set the variable, if it is not already set you are probably better of doing something along these lines:

variable="${variable-$(...)}"

Note that this does not deal with a defined but empty variable.

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Keep in mind that -v was not added to bash until version 4.2. –  chepner Nov 6 '14 at 14:14
    
@chepner thanks, update the answer accordingly –  Felix Leipold Apr 2 at 2:03

In the beginning of your script, you could define your variables with an empty value

variable_undefined=""

Then

if [ "${variable_undefined}" == "" ]; then
    variable="$(...)"
fi
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Dashes aren't valid variable name characters. It's part of the parameter expansion syntax that the OP is using. –  Dennis Williamson Jul 6 '12 at 12:35
2  
Then it is better to test with -z to check if the size of the string is zero –  coelhudo Jul 6 '12 at 12:35
    
@coelhuedo ...but you can't expand an undefined variable in set -u mode in order to run it through test -z, hence this question. –  Charles Duffy Jul 6 '12 at 13:12
    
@CharlesDuffy Thanks for the information –  coelhudo Jul 6 '12 at 13:40
    
I like this way of getting around the problem because it forces you to 'declare' your variables at the top of your script. –  Ramon Jul 6 '12 at 14:50

Unfortunatly [[ -v variable ]] is not supported in older versions of bash (at least not in version 4.1.5 I have on Debian Squeeze)

You could instead use a sub shell as in this :

if (true $variable)&>/dev/null; then
    variable="$(...)"
fi
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