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A simple Bash variable test goes:

${varName:?    "${varName} is not defined"}

I'd like to re-use this, by putting it in a function. How please?

Following fails

#
# Test a variable exists
tvar(){
 val=${1:?    "${1}    must be defined, preferably in $basedir"}
 if [ -z ${val}  ]
     then 
     echo Zero length value 
 else
     echo ${1} exists, value ${1}
 fi
}

I.e. I need to exit if the test fails.

share|improve this question
    
Your title says "unset", but your example tests for "either unset or set to the empty string". Which case do you care about? –  Mark Reed Sep 18 '14 at 17:17

8 Answers 8

Thanks to lhunath's answer, I was led to a part of the Bash man page that I've overlooked hundreds of times:

    When  not performing substring  expansion, bash tests for a parameter that
    is unset  or null; omitting the colon results in a test only for a parame‐
    ter that is unset.

This prompted me to create the following truth table:


                | unset |   set    | set and  | meaning
                |       | but null | not null |
    ============+=======+==========+==========+=============================
     ${var-_}   |   T   |     F    |    T     | not null or not set
    ------------+-------+----------+----------+-----------------------------
     ${var:-_}  |   T   |     T    |    T     | always true, use for subst.
    ------------+-------+----------+----------+-----------------------------
     $var       |   F   |     F    |    T     | var is set and not null
    ------------+-------+----------+----------+-----------------------------
     ${!var[@]} |   F   |     T    |    T     | var is set

This table introduces the specification in the last row. The Bash man page says "If name is not an array, expands to 0 if name is set and null otherwise." For purposes of this truth table, it behaves the same even if it's an array.

share|improve this answer
    
Very cool, but do you know why this fails when var is an array: test "${!var[@]}" && echo 'T' || echo 'F', error message binary operator expected –  l0b0 Nov 10 '10 at 9:33
    
@l0b0: It gives me a "T" or an "F" depending on whether var is set or unset. What shell (and its version)? (This only works in Bash.) What is the contents of ${var[@]} (output of declare -p var)? –  Dennis Williamson Nov 10 '10 at 15:26
    
Bash 4.1.5(1)-release (i486-pc-linux-gnu), declare -a var='([0]="var1" [1]="var2" [2]="var3")'. See gist –  l0b0 Nov 10 '10 at 16:23
    
@l0b0: Oh, sorry, test (aka [) doesn't support the same features as [[. Try [[ ${!var[@]}" ]] && echo 'T' || echo 'F'. See also this and this. –  Dennis Williamson Nov 10 '10 at 19:27
    
@Dennis: That doesn't fail, but produces true even for unset (see gist) –  l0b0 Nov 11 '10 at 9:19

What you're looking for is indirection.

assertNotEmpty() {
    : "${!1:? "$1 is empty, aborting."}"
}

That causes the script to abort with an error message if you do something like this:

$ foo=""
$ assertNotEmpty foo
bash: !1:  foo is empty, aborting.

If you just want to test whether foo is empty, instead of aborting the script, use this instead of a function:

[[ $foo ]]

For example:

until read -p "What is your name? " name && [[ $name ]]; do
    echo "You didn't enter your name.  Please, try again." >&2
done

Also, note that there is a very important difference between an empty and an unset parameter. You should take care not to confuse these terms! An empty parameter is one that is set but just set to an empty string. An unset parameter is one that doesn't exist at all.

The previous examples all test for empty parameters. If you want to test for unset parameters and consider all set parameters OK, whether they're empty or not, use this:

[[ ! $foo && ${foo-_} ]]

Use it in a function like this:

assertIsSet() {
    [[ ! ${!1} && ${!1-_} ]] && {
        echo "$1 is not set, aborting." >&2
        exit 1
    }
}

Which only aborts the script when the parameter name you pass denotes a parameter that isn't set:

$ ( foo="blah"; assertIsSet foo; echo "Still running." )
Still running.
$ ( foo=""; assertIsSet foo; echo "Still running." )
Still running.
$ ( unset foo; assertIsSet foo; echo "Still running." )
foo is not set, aborting.
share|improve this answer
    
That's the one I want. Thanks. I should have said unset. so the function I want is assertIsSet() { [[ ! ${!1} && ${!1-_} ]] && { echo "$1 is not set, aborting." >&2 exit 1 } } Thanks. –  DaveP May 17 '09 at 13:30
    
For newer bash, the test [[ ! -v var ]] will be true only when the var is unset. Looks easier than the double test in assertIsSet. :) –  BinaryZebra May 14 at 20:49

You want to use [ -z ${parameter+word} ]

Some part of man bash:

Parameter Expansion
    ...
    In  each  of  the cases below, word is subject to tilde expansion, parameter expansion, command substitution, and
    arithmetic expansion.  When not performing substring expansion, bash tests for a parameter that is unset or null;
    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.
    ...

in other words:

    ${parameter+word}
           Use Alternate Value.  If parameter is unset, nothing is substituted, otherwise  the  expansion  of
           word is substituted.

some examples:

$ set | grep FOOBAR
$ if [ -z "${FOOBAR+something}" ]; then echo "it is unset"; fi
it is unset
$ declare FOOBAR
$ if [ -z "${FOOBAR+something}" ]; then echo "it is unset"; fi
$ FOOBAR=
$ if [ -z "${FOOBAR+something}" ]; then echo "it is unset"; fi
$ FOOBAR=1
$ if [ -z "${FOOBAR+something}" ]; then echo "it is unset"; fi
$ unset FOOBAR
$ if [ -z "${FOOBAR+something}" ]; then echo "it is unset"; fi
it is unset
$
share|improve this answer

This function tests for variables that ARE CURRENTLY set. The variable may even be an array. Note that in bash: 0 == TRUE, 1 == FALSE.

function var.defined {
    eval '[[ ${!'$1'[@]} ]]'
}

# Typical Usage of var.defined {}

declare you="Your Name Here" ref='you';

read -p "What's your name: " you;

if var.defined you; then   # Simple demo using literal text

    echo "BASH recognizes $you";
    echo "BASH also knows a reference to $ref as ${!ref}, by indirection."; 

fi

unset you # have just been killed by a master :D

if ! var.defined $ref; then    # Standard demo using an expanded literal value

    echo "BASH doesn't know $ref any longer";

fi

read -s -N 1 -p "Press any key to continue...";
echo "";

So to be clear here, the function tests literal text. Everytime a command is called in bash, variables are GENERALLY 'swapped-out' or 'substituted' with the underlying value unless:

  • $varRef ($) is escaped: \$varRef
  • $varRef is single quoted '$varRef'
share|improve this answer
    
The command eval is a very risky command, specially when you are expanding a var set by the user (name). Better to use: [[ -v name ]], internal to bash, much safer to use. :) –  BinaryZebra May 14 at 20:53

I don't have understood exactly what do you need. I'm trying to replying you despite of this.

I.e. I need to exit if the test fails.

The code:

${varName:?    "${varName} is not defined"}

will return a non zero exit code when there is not a variable named "varName". The exit code of the last command is saved in $?.

About your code:

val=${1:?    "${1}    must be defined, preferably in $basedir"}

Maybe it is not doing what you need. In the case that $1 is not defined the "${1}" will be substituted with nothing. Probably you want use the single quotes that literally writes ${1} without substitution.

val=${1:?    '${1}    must be defined, preferably in $basedir'
share|improve this answer
    
I want to encapsulate the test in a function, to allow me to call it with defined SomeVariableName so that I can re-use it. –  DaveP May 17 '09 at 12:32
    
My finished function, tests for both unset and empty (belt and braces) assertIsSet2() { if [[ ! ${!1} && ${!1-_} ]] then echo "$1 is not set, aborting." >&2 exit 1 #else # echo ${1} is set, value [${1}] fi : "${!1:? "$1 is empty, aborting."}" } Thanks for the input. I'm back on track! –  DaveP May 17 '09 at 15:11

Unsure if this is exactly what you want but a handy trick I use when writing a new+complex script is to use "set -o"

set -o #will make the script bomb out when it finds an unset variable

EG:

$ grep '$1' chex.sh

case "$1" in

$ ./chex.sh

./chex.sh: line 111: $1: unbound variable

$ ./chex.sh foo

incorrect/no options passed.. exiting

share|improve this answer
    
Do you mean set -u? set -o is for setting options, like set -o pipefail (which you should also use). –  Tom Anderson Jun 30 '11 at 14:24
    
'set -u' is the same as 'set -o nounset', which was probably intended above. –  jmanning2k Aug 8 '11 at 14:44
if set | grep -q '^VARIABLE='
then 
    echo VARIABLE is set
fi
share|improve this answer

Short answer for the required function is (IMHO):

tvar(){ [[ ! -v $1 ]] && echo "variable $1 is UN-set"; }

call it as tvar varname.

however, I would like to extend to cover some details.

Simple tests

A list of simple tests proves that test gives true value to anything that is not empty. As is sometimes called pendantic, fully equivalent to the test with the condition -n.
That is explained in this answer.

We can move to more complex tests of what is true or not.
And by saying complex, I mean tests on more complex variables than just containing a value.

i.e.: the effect of using a value like ${var:-default}.

A simple test function as used in that question does not work with more complex values. It seems rather intuitive that testing a value like ${var:-default} will result in a test always true.

unset var; [ ${var:-default} ]  && echo "T|$?" || echo "F|$?"
var="str"; [ ${var:-default} ]  && echo "T|$?" || echo "F|$?"

Results in true T|0 for both questions.

Why? Because, if the var is empty, the resulting value is default, which is "not empty", and when the var contains some value, such value is also "not empty". Thus, a "true" test result in all conditions.

The resulting value of such entities change whether the var contains a value or not, in several different ways. To deal with such changes, we need a more capable testing function. One that could give results for several $var states (or conditions). Similar this one:

tval(){
    printf "test %15s with \$var=\"%8s\"" "$1" "$var"
    eval a"=$1"
    if   [ "x$a" == "xdefault" ];   then printf "%10s selected" "default" 
    elif [ "x$a" == "x" ];          then printf "%10s selected" "null"
    elif [ "x$a" != "xdefault" ];   then printf "%10s selected" "other"
    fi
    printf "\n" 
}

unset var;      tval "\${var-default}"
var="";         tval "\${var-default}"
var="str";      tval "\${var-default}"
unset var;      tval "\${var:-default}"
var="";         tval "\${var:-default}"
var="str";      tval "\${var:-default}"
echo

Running the tests above we get this results:

test  ${var-default} with $var="        "   default selected
test  ${var-default} with $var="        "      null selected
test  ${var-default} with $var="     str"     other selected
test ${var:-default} with $var="        "   default selected
test ${var:-default} with $var="        "   default selected
test ${var:-default} with $var="     str"     other selected

As is clear above, the colon (:) makes the result default when var="",
that is: the var is set (exists) but is empty.

That is different that the case without the colon (:).

Building the table

We could even build a table with a more extended script:

tval1(){
    eval a"=$1"
    if  [ "x$a" == "xdefault" ]; then printf " %7s |" "default"
    elif    [ "x$a" == "x_" ];   then printf " %7s |" "under"    
    elif    [ "x$a" == "x" ];    then printf " %7s |" "null"
    elif    [ "x$a" == "x$var" ];    then printf " %7s |" "var"
    else                      printf " %7s |" "other"
    fi
}

tval(){ tval1 "$1"; }

table(){
    printf "test  %20s |" "$1"
    unset var ; tval "$1"
    var=""    ; tval "$1"
    var="xyz" ; tval "$1"
    var=(var1 var2 var3); tval "$1" 
    printf "\n" 
}

testtable(){
printf " %25s ============  var condition  ============\n"
printf " %25s =========================================\n"
printf " %25s | %7s | %7s | %7s | %7s |\n" "" "unset" "null" "set" "array"
printf " %25s =========================================\n"

table "\$var"
table "\${var-default}"
table "\${var-_}"
table "\${var:-default}"
table "\${var:-_}"
table "\${var:=default}"
table "\${var=default}"
table "\${var:+default}"
table "\${var+default}"
table "\${!var[@]}"
echo
}

tval(){ tval1 "$1"; }
testtable

Table Results

The results of running the script are:

                           ============  var condition  ============
                           =========================================
                           |   unset |    null |     set |   array |
                           =========================================
test                  $var |    null |    null |     var |     var |
test        ${var-default} | default |    null |     var |     var |
test              ${var-_} |   under |    null |     var |     var |
test       ${var:-default} | default | default |     var |     var |
test             ${var:-_} |   under |   under |     var |     var |
test       ${var:=default} | default | default |     var |     var |
test        ${var=default} | default |    null |     var |     var |
test       ${var:+default} |    null |    null | default | default |
test        ${var+default} |    null | default | default | default |
test            ${!var[@]} |    null |   other |   other |   other |

testing the case of ${parameter:?word} will stop the script, so it is not shown here by default but could be tested by the reader.

Either default or underscore represent the default value selected, in each specific case.

It is interesting to note that the underscore is used here as a value. In exactly the same sense as default or some other default value. It is NOT being used as a variable. And, in specific, it is a bad idea to use a var named _ (even if legal) because the shell has some very specific uses for such variable.

The last test ${!var[@]} shows "other" for "null" and "set", which correctly correspond to the fact that in such cases the value of ${!var[@]} is zero 0, which matches no other specific value.

When the var is set, to a value, or an array, the results are the same.

Order of tests

It is interesting to note that the order of the checks also contain information. In specific, if the first test is $a == $var it will always be true for the case of testing $var. Because, obviouslly, $var is always equal to itself.

if we change tval to run tval2 and re-run all test with this script:

tval2(){
    eval a"=$1"
    if  [ "x$a" == "x$var" ];    then printf " %7s |" "var"
    elif    [ "x$a" == "xdefault" ]; then printf " %7s |" "default"
    elif    [ "x$a" == "x_" ];   then printf " %7s |" "under"    
    elif    [ "x$a" == "x" ];    then printf " %7s |" "null"
    else                      printf " %7s |" "other"
    fi
}

tval(){ tval2 "$1"; }
testtable

The tests results of using val2 and thus changing the order of the tests are as follows:

                           ============  var condition  ============
                           =========================================
                           |   unset |    null |     set |   array |
                           =========================================
test                  $var |     var |     var |     var |     var |
test        ${var-default} | default |     var |     var |     var |
test              ${var-_} |   under |     var |     var |     var |
test       ${var:-default} | default | default |     var |     var |
test             ${var:-_} |   under |   under |     var |     var |
test       ${var:=default} |     var |     var |     var |     var |
test        ${var=default} |     var |     var |     var |     var |
test       ${var:+default} |     var |     var | default | default |
test        ${var+default} |     var | default | default | default |
test            ${!var[@]} |     var |   other |   other |   other |

While the intrinsic meaning is still the same, the specific tests results change in some ways.

I have NOT used the tests above in other shells, this was tested only inside bash. Most of the presented tests and values are specific to bash.

However, it is still a pending issue to test the above inside the double construct quite common in bash: [[ ]]. I believe that the results will be exactly the same as reported here.

If, and when I run such tests, I'll update this post.

NOTE THAT: the simplest way to test if a var has been set is (from man bash): [ -v varname ] True if the shell variable varname is set (has been assigned a value).

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