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If I have an array like this in Bash:

FOO=( a b c )

How do I join the elements with commas? For example, producing a,b,c.

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19 Answers 19

up vote 109 down vote accepted

Rewriting solution by Pascal Pilz as a function in 100% pure Bash (no external commands):

function join { local IFS="$1"; shift; echo "$*"; }

For example,

join , a "b c" d #a,b c,d
join / var local tmp #var/local/tmp
join , "${FOO[@]}" #a,b,c
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This is really a clean solution, thanks –  zhihong Oct 17 '13 at 12:51
Use this for multicharacter separators: function join { perl -e '$s = shift @ARGV; print join($s, @ARGV);' "$@"; } join ', ' a b c # a, b, c –  dpatru Jun 19 '14 at 15:06
@dpatru anyway to make that pure bash? –  CMCDragonkai Jul 4 '14 at 0:54
that's very good!! –  zhaozhi Aug 20 '14 at 4:02
space does not work, join " && ", a "b c" d –  puchu Nov 5 '14 at 14:53

Yet another solution:

foo=('foo bar' 'foo baz' 'bar baz')
bar=$(printf ",%s" "${foo[@]}")

echo $bar

Edit: same but for multi-character variable length separator:

separator=")|(" # e.g. constructing regex, pray it does not contain %s
foo=('foo bar' 'foo baz' 'bar baz')
regex="$( printf "${separator}%s" "${foo[@]}" )"
regex="${regex:${#separator}}" # remove leading separator
echo "${regex}"
# Prints: foo bar)|(foo baz)|(bar baz
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This is the cleanest answer IMO. –  Tom Dignan Oct 15 '12 at 3:25
+1. What about printf -v bar ",%s" "${foo[@]}". It is one fork less (actually clone). It is even forking reading a file: printf -v bar ",%s" $(<infile). –  TrueY Jun 8 '13 at 22:55
Instead of praying $separator doesn't contain %s or such, you can make your printf robust: printf "%s%s" "$separator" "${foo[@]}". –  musiphil Sep 13 '13 at 17:02
@AndrDevEK: Thanks for catching the mistake. Instead I would suggest something like printf "%s" "${foo[@]/#/$separator}". –  musiphil Sep 22 '14 at 7:53
@musiphil, Thanks. Yes! Then printf becomes redundant and that line can be reduced to IFS=; regex="${foo[*]/#/$separator}". At this point this essentially becomes gniourf_gniourf's answer which IMO is cleaner from the start, that is, using function to limit scope of IFS changes and temp vars. –  AndrDevEK Sep 22 '14 at 8:11

Maybe, e.g.,


echo "$FOOJOIN"
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If you do that, it thinks that IFS- is the variable. You have to do echo "-${IFS}-" (the curly braces separate the dashes from the variable name). –  Dennis Williamson Oct 6 '09 at 18:57
Still got the same result (I just put the dashes in to illustrate the point… echo $IFS does the same thing. –  David Wolever Oct 6 '09 at 19:59
That said, this still seems to work… So, like most things with Bash, I'll pretend like I understand it and get on with my life. –  David Wolever Oct 6 '09 at 20:06
A "-" is not a valid character for a variable name, so the shell does the right thing when you use $IFS-, you don't need ${IFS}- (bash, ksh, sh and zsh in linux and solaris also agree). –  Idelic Oct 6 '09 at 21:21
@David the difference between your echo and Dennis's is that he has used double quoting. The content of IFS is used 'on input' as a declaration of word-separator characters - so you'll always get an empty line without quotes. –  martin clayton Oct 6 '09 at 21:52
$ foo=(a "b c" d)
$ bar=$(IFS=, ; echo "${foo[*]}")
$ echo "$bar"
a,b c,d
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The outer double quotes and the double quotes around the colon are not necessary. Only the inner double quotes are necessary: bar=$( IFS=, ; echo "${foo[*]}" ) –  ceving Sep 11 '12 at 9:52
+1 for the most compact solution which does not need loops, which does not need external commands and which does not impose additional restrictions on the character set of the arguments. –  ceving Sep 11 '12 at 10:04
i like the solution, but it only works if IFS is one character –  Jayen May 29 '13 at 1:47
Any idea why this doesn't work if using @ instead of *, as in $(IFS=, ; echo "${foo[@]}") ? I can see that the * already preserves the whitespace in the elements, again not sure how, since @ is usually required for this sake. –  haridsv Apr 15 '14 at 7:33
I found the answer for my own question above. The answer is that IFS is only recognized for *. In bash man page, search for "Special Parameters" and look for the explanation next to *: –  haridsv Apr 16 '14 at 6:26

With re-use of @doesn't matters' solution, but with a one statement by avoiding the ${:1} substition and need of an intermediary variable.

echo $(printf "%s," "${LIST[@]}" | cut -d "," -f 1-${#LIST[@]} )

printf has 'The format string is reused as often as necessary to satisfy the arguments.' in its man pages, so that the concatenations of the strings is documented. Then the trick is to use the LIST length to chop the last sperator, since cut will retain only the lenght of LIST as fields count.

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Here's a 100% pure Bash function that does the job:

join() {
    # $1 is return variable name
    # $2 is sep
    # $3... are the elements to join
    local retname=$1 sep=$2 ret=$3
    shift 3 || shift $(($#))
    printf -v "$retname" "%s" "$ret${@/#/$sep}"


$ a=( one two "three three" four five )
$ join joineda " and " "${a[@]}"
$ echo "$joineda"
one and two and three three and four and five
$ join joinedb randomsep "only one element"
$ echo "$joinedb"
only one element
$ join joinedc randomsep
$ echo "$joinedc"

$ a=( $' stuff with\nnewlines\n' $'and trailing newlines\n\n' )
$ join joineda $'a sep with\nnewlines\n' "${a[@]}"
$ echo "$joineda"
 stuff with
a sep with
and trailing newlines


This preserves even the trailing newlines, and doesn't need a subshell to get the result of the function. If you don't like the printf -v (why wouldn't you like it?) and passing a variable name, you can of course use a global variable for the returned string:

join() {
    # $1 is sep
    # $2... are the elements to join
    # return is in global variable join_ret
    local sep=$1 IFS=
    shift 2 || shift $(($#))
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It's nice to add a comment when you downvote. Thanks. –  gniourf_gniourf Dec 5 '14 at 15:20
Your last solution very good, but could be made cleaner by making join_ret a local variable, and then echoing it at the end. This allows join() to be used in the usual shell scripting way, e.g. $(join ":" one two three), and doesn't require a global variable. –  James Sneeringer Mar 27 at 18:27
@JamesSneeringer I purposely used this design so as to avoid subshells. In shell scripting, unlike in many other languages, global variables used that way are not necessarily a bad thing; especially if they are here to help avoiding subshells. Moreover, $(...) trims trailing newlines; so if the last field of the array contains trailing newlines, these would be trimmed (see demo where they are not trimmed with my design). –  gniourf_gniourf Mar 27 at 18:47
$ foo=(a 'b c' d)

$ printf '%s\n' "${foo[@]}" | paste -sd,
a,b c,d
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This should be at the top. –  Eric Walker Aug 13 at 18:54

Surprisingly my solution is not yet given :) This is the simplest way for me. It doesn't need a function:

IFS=, eval 'JOINED="${FOO[*]}"'
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Right now I'm using:

    E201 # Whitespace after '('
    E301 # Expected N blank lines, found M
    E303 # Too many blank lines (pep8 gets confused by comments)
ARGS="--ignore `echo ${TO_IGNORE[@]} | tr ' ' ','`"

Which works, but (in the general case) will break horribly if array elements have a space in them.

(For those interested, this is a wrapper script around

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from where do you get those array values? if you are hardcoding it like that, why not just foo="a,b,c".? –  ghostdog74 Oct 6 '09 at 23:55
In this case I actually am hard-coding the values, but I want to put them in an array so I can comment on each individually. I've updated the answer to show you what I mean. –  David Wolever Oct 7 '09 at 5:11
Assuming you are actually using bash, this might work better: ARGS="--ignore $(echo "${TO_IGNORE[@]}" | tr ' ' ',')". Operator $() is more powerful than backtics (allows nesting of $() and ""). Wrapping ${TO_IGNORE[@]} with double quotes should also help. –  kevinarpe Nov 8 '13 at 16:58
s=$(IFS=, eval 'echo "${FOO[*]}"')
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You should flesh out your answer. –  Joce Mar 26 '13 at 1:45

Use perl for multicharacter separators:

function join {
   perl -e '$s = shift @ARGV; print join($s, @ARGV);' "$@"; 

join ', ' a b c # a, b, c

Or in one line:

perl -le 'print join(shift, @ARGV);' ', ' 1 2 3
1, 2, 3
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works for me, although the join name conflicts with some crap on OS X.. i'd call it conjoined, or maybe jackie_joyner_kersee? –  alex gray Jul 10 at 14:51

This approach takes care of spaces within the values, but requires a loop:


FOO=( a b c )

for index in ${!FOO[*]}
echo ${BAR:1}
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In case the elements you want to join is not an array just a space separated string, you can do something like this:

foo="aa bb cc dd" bar=for i in $foo; do printf ",'%s'" $i; done bar=${bar:1} echo $bar 'aa','bb','cc','dd'

for example, my use case is that some strings are passed in my shell script and I need to use this to run on a SQL query:

./my_script "aa bb cc dd"

In my_script, I need to do "SELECT * FROM table WHERE name IN ('aa','bb','cc','dd'). Then above command will be useful.

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printf solution that accept separators of any length (based on @doesn't matters answer)

foo=('foo bar' 'foo baz' 'bar baz')

sep=',' # can be of any length
bar=$(printf "${sep}%s" "${foo[@]}")

echo $bar
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This produces output with a leading comma. –  Mark Renouf Aug 21 '13 at 15:13
The last bar=${bar:${#sep}} removes the separator. I just copy and pasted in a bash shell and it does work. What shell are you using? –  Riccardo Galli Aug 22 '13 at 14:57
Any printf format specifier (eg. %s unintentionally in $sep will cause problems. –  Peter.O May 22 at 17:55
$ FOO=( a b c )
$ BAR=${FOO[@]}
$ BAZ=${BAR// /,}
$ echo $BAZ

Warning, it assumes elements don't have whitespaces.

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awk -v sep=. 'BEGIN{ORS=OFS="";for(i=1;i<ARGC;i++){print ARGV[i],ARGC-i-1?sep:""}}' "${arr[@]}"


$ a=(1 "a b" 3)
$ b=$(IFS=, ; echo "${a[*]}")
$ echo $b
1,a b,3
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My attempt.

$ array=(one two "three four" five)
$ echo "${array[0]}$(printf " SEP %s" "${array[@]:1}")"
one SEP two SEP three four SEP five
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Perhaps I'm missing something obvious, since I'm a newb to the whole bash/zsh thing, but it looks to me like you don't need to use printf at all. Nor does it get really ugly to do without.

join() {
  arr=${arr:2} # throw away separator and following space
  arr=${arr// /$separator}

At least, it has worked for me thus far without issue.

For instance, join \| *.sh, which, let's say I'm in my ~ directory, outputs|| Good enough for me.

EDIT: This is basically Nil Geisweiller's answer, but generalized into a function.

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for item in list
LEN=`expr length $liststr`
LEN=`expr $LEN - 1`

This takes care of the extra comma at the end also. I am no bash expert. Just my 2c, since this is more elementary and understandable

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this is too long –  ceving Sep 11 '12 at 9:56

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