44

I have a loop over variable names and I need to check if content of a variable is an array or not:

for varname in AA BB CC; do
  local val
  if [ "$varname" is array ]; then # how can I perform this test?
    echo do something with an array
  else
    echo do something with a "'normal'" variable
  fi
done

How do I do it?

40

To avoid a call to grep, you could use:

if [[ "$(declare -p variable_name)" =~ "declare -a" ]]; then
    echo array
else
    echo no array
fi
10
  • 4
    commenting on multiple answers: if you update your regex to also check for 'typeset' instead of just 'declare', this will be more portable.
    – Sparr
    Apr 19 '16 at 23:08
  • None of these answers handle empty arrays correctly. Declare gives a 'bash: declare: var: not found' error, despite the fact that the variable appears when you run 'declare -ap'. So a solution that includes empty variables might have to grep the output of 'declare -ap'.
    – Sam Bull
    Mar 9 '17 at 23:03
  • @Sparr, sure, typeset is available in other shells, but that doesn't mean the output will be identical. Mar 18 '17 at 17:05
  • This currently looks for the string anywhere in the output from declare -p -- so it would match a string containing the literal contents declare -a somewhere within. Mar 18 '17 at 17:06
  • @CharlesDuffy I think changing the regex to ^declare -a variable_name($|=) would solve that: pattern="^declare -a variable_name($|=)"; if [[ "$(declare -p variable_name)" =~ $pattern ]];then .... Here ^ anchors declare to the start of the line, while ($|=) causes it to match only if the declaration is followed by a value assignment or end of line. End of line is to match the output if declared but not assigned in bash 4.4.12 (although not in bash 3.2.57, but this patterns works there too because it's output is =() in that case).
    – Rolf W.
    Sep 23 '17 at 9:18
22

According to this wiki page, you can use this command:

declare -p variable-name 2> /dev/null | grep -q '^declare \-a'
9
  • 1
    I added the ^ to the pattern to avoid the false positive on variable-name='declare -a' mentioned in the examples.
    – cmbuckley
    Jan 25 '13 at 16:02
  • 1
    Thanks, it works fine. As an excuse for not googling, I did find the link you mention, but I am forbidden to view it. man bash has all of it there, though, but I didn't think about looking for in under 'declare'... Thanks!
    – wujek
    Jan 25 '13 at 16:17
  • 2
    a faster alternative: str="`declare -p astr 2>/dev/null`";if [[ "${str:0:10}" == 'declare -a' ]];then echo array;fi I wonder if there is anything faster? Jun 10 '14 at 22:53
  • 35
    Google is my friend, that's why he took me here. (It's also because he's friend of SO.) Mar 24 '16 at 21:39
  • 1
    commenting on multiple answers: if you update your grep to also check for 'typeset' instead of just 'declare', this will be more portable.
    – Sparr
    Apr 19 '16 at 23:08
17

Since bash 4.3 it is not that easy anymore.

With "declare -n" you can add a reference to another variable and you can do this over and over again. As if this was not complicated enough, with "declare -p", you do not get the type or the original variable.

Example:

$ declare -a test=( a b c d e)
$ declare -n mytest=test
$ declare -n newtest=mytest
$ declare -p newtest
declare -n newtest="mytest"
$ declare -p mytest
declare -n mytest="test"

Therefore you have to loop through all the references. In bash-only this would look like this:

vartype() {
    local var=$( declare -p $1 )
    local reg='^declare -n [^=]+=\"([^\"]+)\"$'
    while [[ $var =~ $reg ]]; do
            var=$( declare -p ${BASH_REMATCH[1]} )
    done

    case "${var#declare -}" in
    a*)
            echo "ARRAY"
            ;;
    A*)
            echo "HASH"
            ;;
    i*)
            echo "INT"
            ;;
    x*)
            echo "EXPORT"
            ;;
    *)
            echo "OTHER"
            ;;
    esac
}

With the above example:

$ vartype newtest
ARRAY

To check for array, you can modify the code or use it with grep:

vartype $varname | grep -q "ARRAY"
1
  • For a non-declared variable, catch/ignore the error message by changing first line to local var=$( declare -p $1 2>/dev/null ).
    – Cometsong
    Mar 5 '19 at 15:55
5

I started with Reuben's great answer above. I implemented a few of the comments and some of my own improvements and came out with this:

#!/bin/bash
array_test() {
    # no argument passed
    [[ $# -ne 1 ]] && echo 'Supply a variable name as an argument'>&2 && return 2
    local var=$1
    # use a variable to avoid having to escape spaces
    local regex="^declare -[aA] ${var}(=|$)"
    [[ $(declare -p "$var" 2> /dev/null) =~ $regex ]] && return 0
}

Now I can do this:

foo=(lorem ipsum dolor)
bar="declare -a tricky"
declare -A baz

array_test foo && echo "it's an array"
array_test bar && echo "it's an array"
# properly detects empty arrays
array_test baz && echo "it's an array"
# won't throw errors on undeclared variables
array_test foobarbaz && echo "it's an array"
0
is_array() {
  local variable_name=$1
  [[ "$(declare -p $variable_name)" =~ "declare -a" ]]
}

is_array BASH_VERSINFO && echo BASH_VERSINFO is an array

is_array() {
    local variable_name=$1
    [[ "$(declare -p $variable_name 2>/dev/null)" =~ "declare -a" ]]
}
6
  • 8
    Any additional explanation would help improve your answer.
    – ryanyuyu
    Jun 2 '15 at 15:14
  • commenting on multiple answers: if you update your regex to also check for 'typeset' instead of just 'declare', this will be more portable.
    – Sparr
    Apr 19 '16 at 23:08
  • @Sparr, I disagree that it will be more portable in practice, because a shell that doesn't support declare -p won't have declare -a in the output of typeset. Mar 18 '17 at 17:07
  • @CharlesDuffy I can't remember the scenario in which this was relevant to me. Based on the time of my comment, I suspect I was using OSX at the time.
    – Sparr
    Mar 22 '17 at 20:40
  • OSX does come with (real David Korn) ksh93, which uses typeset rather than declare, so that does make sense -- but one would still need to adjust the regex and test it in both places. Mar 22 '17 at 20:45
0

Another Way:

Example, create an Array:

Variable=(The Quick Brown Fox...)

Test the Variable:

if [ "${#Variable[@]}" -gt "1" ] ;
 then echo "Variable is an Array"; 
else echo "Variable is NOT an Array" ; 
fi
4
  • 2
    This fails when the array is of length 1 or empty, but still an array.
    – wujek
    Feb 20 '19 at 12:44
  • In practice, it is rarely to happen that an Array has only 1 content. There is actually no difference between an ordinary variable and an array with only 1 index value. Example: Var=hello echo ${Var} hello echo ${Var[0]} hello # lets add another index value Var[1]=h3ll0 echo ${Var} hello echo ${Var[0]} hello echo ${Var[1]} h3ll0 echo ${Var[0]} hello echo $Var hello As you can see there is no difference. But I get your point. Feb 20 '19 at 20:19
  • this imperfect answer has the benefit of not requiring a fork+exec to get the answer Feb 6 '20 at 12:34
  • @Josef, there is actually a difference between single element array and ordinary variable: "set -u; a=(1);unset a[0];echo ${#a[@];b=1;unset b[0];echo ${#b[@]}. If I use your test to verify if a var is an array, I will just get an error with this code.
    – Bruno
    Feb 24 at 9:45
0

I think this does it, it checks that the array indexes don't match "" or "0"

It should be cheap for small arrays and non-arrays.

It works by testing for any non-zero character in the array indexes

is_array() {
  eval [[ "\"\${!$1[*]}\"" =~ "[1-9]" ]]
}

an_array=(1 2 3)
wierd_array[4]=3
non_array="Joe"
unset non_exist

is_array an_array && echo pass || echo fail
is_array wierd_array && echo pass || echo fail
is_array non_array && echo fail || echo pass
is_array non_exist && echo fail || echo pass

output should be

pass
pass
pass
pass

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