282

I have a variable which contains a space-delimited string:

line="1 1.50 string"

I want to split that string with space as a delimiter and store the result in an array, so that the following:

echo ${arr[0]}
echo ${arr[1]}
echo ${arr[2]}

outputs

1
1.50
string

Somewhere I found a solution which doesn't work:

arr=$(echo ${line})

If I run the echo statements above after this, I get:

1 1.50 string
[empty line]
[empty line]

I also tried

IFS=" "
arr=$(echo ${line})

with the same result. Can someone help, please?

Improve this question
3

6 Answers 6

Reset to default
430

In order to convert a string into an array, create an array from the string, letting the string get split naturally according to the IFS (Internal Field Separator) variable, which is the space char by default:

arr=($line)

or pass the string to the stdin of the read command using the herestring (<<<) operator:

read -a arr <<< "$line"

For the first example, it is crucial not to use quotes around $line since that is what allows the string to get split into multiple elements.

See also: https://github.com/koalaman/shellcheck/wiki/SC2206

Improve this answer
12
  • 14
    and to do a sanity check of your beautiful new array: for i in ${arr[@]}; do echo $i; done
    – Banjer
    Oct 11, 2013 at 15:00
  • 9
    or just echo ${arr[@]}
    – Banjer
    Oct 11, 2013 at 15:29
  • 13
    Both ways may fail if $line has globbing characters in it. mkdir x && cd x && touch A B C && line="*" arr=($line); echo ${#arr[@]} gives 3
    – Tino
    Nov 26, 2014 at 0:25
  • 4
    declare -a "arr=($line)" will ignore IFS delimiters inside quoted strings
    – Dave
    Oct 21, 2015 at 20:13
  • 5
    @Tino No. When line='*', read -a arr <<<$line always work, but only arr=($line) fails.
    – Johnny Wong
    Aug 10, 2017 at 10:11
61

In: arr=( $line ). The "split" comes associated with "glob".
Wildcards (*,? and []) will be expanded to matching filenames.

The correct solution is only slightly more complex:

IFS=' ' read -a arr <<< "$line"

No globbing problem; the split character is set in $IFS, variables quoted.

Improve this answer
4
58

Try this:

arr=(`echo ${line}`);
Improve this answer
8
  • 12
    Nice -- This solution also works in Z shell where some of the other approaches above fail.
    – Keith Hughitt
    Sep 27, 2014 at 12:31
  • Its does the work, could you please explain why it works?
    – vr3C
    Sep 19, 2016 at 3:49
  • 3
    Remark: this doesn't work either when the line have '*' in it, like line='*'
    – Johnny Wong
    Oct 9, 2017 at 2:11
  • Looking for a GNU Make 4.2.1 solution, but it doesn't did the job
    – artu-hnrq
    Feb 16, 2021 at 21:57
  • @artu-hnrq Make use the sh shell. That shell has no arrays. The question is about arrays. Can't give you an answer compatible with both requirements. Unless you claim that the positional arguments are the only array in sh and, then, this: set -- $line; printf '%s\n' "$@" would work. Note that glob characters are still a problem in this case.
    – user8017719
    Feb 16, 2021 at 23:15
15

If you need parameter expansion, then try:

eval "arr=($line)"

For example, take the following code. 

line='a b "c d" "*" *'
eval "arr=($line)"
for s in "${arr[@]}"; do 
    echo "$s"
done

If the current directory contained the files a.txt, b.txt and c.txt, then executing the code would produce the following output.

a
b
c d
*
a.txt
b.txt
c.txt
Improve this answer
1
  • Looking for a GNU Make 4.2.1 solution, but is not that
    – artu-hnrq
    Feb 16, 2021 at 21:53
0

Yet another solution, but using readarray:

readarray -d ' ' arr <<< "argelia china denmark colombia"

Indeed, storing the input in an array of 4 positions:

$ echo ${#arr[@]} ${arr[@]:1:2}
4 china  denmark
Improve this answer
-9 
line="1 1.50 string"

arr=$( $line | tr " " "\n")

for x in $arr
do
echo "> [$x]"
done
Improve this answer
1
  • The looping is wrong, it splits the array fine and the pipe into tr is superfluous but it should loop over "${arr[@]}" instead, not $arr
    – Zorf
    Mar 7, 2015 at 12:44

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge that you have read and understand our privacy policy and code of conduct.

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