Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

Is it possible to take the difference of two arrays in bash.
Would be really great if you could suggest me the way to do it.

Code :

Array1=( "key1" "key2" "key3" "key4" "key5" "key6" "key7" "key8" "key9" "key10" )
Array2=( "key1" "key2" "key3" "key4" "key5" "key6" ) 

Array3 =diff(Array1, Array2)

Array3 ideally should be :
Array3=( "key7" "key8" "key9" "key10" )

Appreciate your help.

share|improve this question

5 Answers 5

up vote 13 down vote accepted

If you strictly want Array1 - Array2, then

$ Array3=()
$ for i in "${Array1[@]}"; do
>     skip=
>     for j in "${Array2[@]}"; do
>         [[ $i == $j ]] && { skip=1; break; }
>     done
>     [[ -n $skip ]] || Array3+=("$i")
> done
$ declare -p Array3

Runtime might be improved with associative arrays, but I personally wouldn't bother. If you're manipulating enough data for that to matter, shell is the wrong tool.

For a symmetric difference like Dennis's answer, existing tools like comm work, as long as we massage the input and output a bit (since they work on line-based files, not shell variables).

Here, we tell the shell to use newlines to join the array into a single string, and discard tabs when reading lines from comm back into an array.

$ oldIFS=$IFS IFS=$'\n\t'
$ Array3=($(comm -3 <(echo "${Array1[*]}") <(echo "${Array2[*]}")))
comm: file 1 is not in sorted order
$ IFS=$oldIFS
$ declare -p Array3
declare -a Array3='([0]="key7" [1]="key8" [2]="key9" [3]="key10")'

It complains because, by lexographical sorting, key1 < … < key9 > key10. But since both input arrays are sorted similarly, it's fine to ignore that warning. You can use --nocheck-order to get rid of the warning, or add a | sort -u inside the <(…) process substitution if you can't guarantee order&uniqueness of the input arrays.

share|improve this answer
thank for this post! definitely helped me. – Oz123 Dec 27 '11 at 12:22
+1 for the 1st snippet, which also works with elements with embedded whitespace. The 2nd snippet works with elements with embedded spaces only. You can do away with saving and restoring $IFS if you simply prepend IFS=$'\n\t' directly to the Array3=... command. – mklement0 Jun 1 '14 at 5:35
@mklement0 The command you're suggesting: IFS=$'\n\t' Array3=( ... ) will set IFS globally. Try it! – gniourf_gniourf Jun 1 '14 at 7:06
@gniourf_gniourf: Thanks for catching that! Because my fallacy may be seductive to others too, I'll leave my original comment and explain here: While it's a common and useful idiom to prepend an ad-hoc, command-local variable assignment to a simple command, it does NOT work here, because my command is composed entirely of assignments. No command name (external executable, builtin) follows the assignments, which makes all of them global (in the context of the current shell); see man bash, section SIMPLE COMMAND EXPANSION). – mklement0 Jun 1 '14 at 16:25
Can you give an example how to do this in a C-shell (csh)? – Stefan Nov 11 '14 at 15:13

Anytime a question pops up dealing with unique values that may not be sorted, my mind immediately goes to awk. Here is my take on it.



  awk 'BEGIN{RS=ORS=" "}
       END{for(k in a)if(a[k])print k}' <(echo -n "${!1}") <(echo -n "${!2}")

Array1=( "key1" "key2" "key3" "key4" "key5" "key6" "key7" "key8" "key9" "key10" )
Array2=( "key1" "key2" "key3" "key4" "key5" "key6" )
Array3=($(diff Array1[@] Array2[@]))
echo ${Array3[@]}


$ ./
key10 key7 key8 key9

Note*: Like other answers given, if there are duplicate keys in an array they will only be reported once; this may or may not be the behavior you are looking for. The awk code to handle that is messier and not as clean.

share|improve this answer
To summarize the behavior and constraints: (a) performs a symmetrical difference: outputs a single array with elements unique to either input array (which with the OP's sample data happens to be the same as only outputting elements unique to the first array), (b) only works with elements that have no embedded whitespace (which satisfies the OP's requirements), and (c) the order of elements in the output array has NO guaranteed relationship to the order of input elements, due to awk's unconditional use of associative arrays - as evidenced by the sample output. – mklement0 Jun 1 '14 at 5:46
Also, this answer uses a clever-and-noteworthy-but-baffling-if-unexplained workaround for bash's lack of support for passing arrays as arguments: Array1[@] and Array2[@] are passed as strings - the respective array names plus the all-subscripts suffix [@]- to shell function diff() (as arguments $1 and $2, as usual). The shell function then uses bash's variable indirection ({!...}) to indirectly refer to all elements of the original arrays (${!1} and `${!1}'). – mklement0 Jun 1 '14 at 5:48
how to transform a string "a b C" into an array? – brauliobo Oct 7 '14 at 21:46
found an error: elements in Array2 not in Array1 will show in diff() – brauliobo Oct 7 '14 at 21:58
@ghostdog74 worked fine – brauliobo Oct 7 '14 at 22:06

In Bash 4:

declare -A temp    # associative array
for element in "${Array1[@]}" "${Array2[@]}"
for element in "${!temp[@]}"
    if (( ${temp[$element]} > 1 ))
        unset "temp[$element]"
Array3=(${!temp[@]})    # retrieve the keys as values


ephemient pointed out a potentially serious bug. If an element exists in one array with one or more duplicates and doesn't exist at all in the other array, it will be incorrectly removed from the list of unique values. The version below attempts to handle that situation.

declare -A temp1 temp2    # associative arrays
for element in "${Array1[@]}"

for element in "${Array2[@]}"

for element in "${!temp1[@]}"
    if (( ${temp1[$element]} >= 1 && ${temp2[$element]-0} >= 1 ))
        unset "temp1[$element]" "temp2[$element]"
Array3=(${!temp1[@]} ${!temp2[@]})
share|improve this answer
That performs a symmetric difference, and assumes that the original arrays have no duplicates. So it's not what I would have thought of first, but it works well for OP's one example. – ephemient Feb 22 '10 at 19:26
@ephemient: Right, the parallel would be to diff(1) which is also symmetric. Also, this script will work to find elements unique to any number of arrays simply by adding them to the list in the second line of the first version. I've added an edit which provides a version to handle duplicates in one array which don't appear in the other. – Dennis Williamson Feb 22 '10 at 21:02
Thanks A lot.. I was thinking if there was any obvious way of doing it.. If i am not aware of any command which would readily give the diff of 2 arrays.. Thanks for your support and help. I modified the code to read the diff of 2 files which was little easier to program – Kiran Feb 22 '10 at 23:21
Your 2nd snippet won't work, because > only works in (( ... )), not in [[ ... ]]; in the latter, it'd have to be -gt; however, since you probably meant >= rather than >, > should be replaced with -ge. To be explicit about what "symmetric" means in this context: the output is a single array containing values that are unique to either array. – mklement0 Jun 1 '14 at 5:16
@mklement0: > does work inside double square brackets, but lexically rather than numerically. Because of that, when comparing integers, double parentheses should be used - so you are correct in that regard. I've updated my answer accordingly. – Dennis Williamson Jun 1 '14 at 14:18
echo ${Array1[@]} ${Array2[@]} | tr ' ' '\n' | sort | uniq -u



You can add sorting if you need

share|improve this answer
He came in, he bossed it and he left. For anyone wondering how to save the value to an array, try this: Array3=(`echo ${Array1[@]} ${Array2[@]} | tr ' ' '\n' | sort | uniq -u `) – Anake Aug 22 at 12:33
This is what shell programming is about. Keep it simple, use the tools available. If you want to implement the other solutions, you can, but you may have an easier time using a more robust language. – DrewVS Aug 26 at 14:10
Array1=( "key1" "key2" "key3" "key4" "key5" "key6" "key7" "key8" "key9" "key10" )
Array2=( "key1" "key2" "key3" "key4" "key5" "key6" )
Array3=( "key1" "key2" "key3" "key4" "key5" "key6" "key11" )
a1=${Array1[@]};a2=${Array2[@]}; a3=${Array3[@]}
    awk -va1="$a1" -va2="$a2" '
       m= split(a1, A1," ")
       n= split(a2, t," ")
       for(i=1;i<=n;i++) { A2[t[i]] }
       for (i=1;i<=m;i++){
            if( ! (A1[i] in A2)  ){
                printf A1[i]" "
Array4=( $(diff "$a1" "$a2") )  #compare a1 against a2
echo "Array4: ${Array4[@]}"
Array4=( $(diff "$a3" "$a1") )  #compare a3 against a1
echo "Array4: ${Array4[@]}"


$ ./
Array4: key7 key8 key9 key10
Array4: key11
share|improve this answer
Thanks a lot.. Gave a very good insight on Shell Programming.. – Kiran Feb 23 '10 at 8:27

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.