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?

up vote 257 down vote accepted

In order to convert a string into an array, please use

arr=($line)

or

read -a arr <<< $line

It is crucial not to use quotes since this does the trick.

  • 30
    +1. Crucial in this case to leave the variable unquoted. – glenn jackman Feb 15 '12 at 14:56
  • 4
    and to do a sanity check of your beautiful new array: for i in ${arr[@]}; do echo $i; done – Banjer Oct 11 '13 at 15:00
  • 5
    or just echo ${arr[@]} – Banjer Oct 11 '13 at 15:29
  • 9
    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 '14 at 0:25
  • 6
    Good to note that this doesn't work with ZSH – hbogert Nov 23 '15 at 14:07

Try this:

arr=(`echo ${line}`);
  • 3
    arr=($(echo ${line})) also works – Daniel Landau Sep 12 '13 at 20:35
  • 4
    Nice -- This solution also works in Z shell where some of the other approaches above fail. – Keith Hughitt Sep 27 '14 at 12:31
  • Nice and elegant :) – Robin Kanters Jan 19 '16 at 16:00
  • Its does the work, could you please explain why it works? – smartwjw Sep 19 '16 at 3:49
  • 1
    Remark: this doesn't work either when the line have '*' in it, like line='*' – Johnny Wong Oct 9 '17 at 2:11

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.

  • 1
    This should be the accepted answer. The statement arr=($line) in the accepted answer suffers from globbing issues. For example, try: line="twinkling *"; arr=($line); declare -p arr. – codeforester Mar 20 at 1:59
  • Quoting is optional for herestring, <<< but it may be a good idea to still use double quotes for consistency and readability. – codeforester Mar 20 at 2:10
line="1 1.50 string"

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

for x in $arr
do
echo "> [$x]"
done
  • Does not seem to work at all. – Lyndon White Feb 2 '15 at 6:53
  • 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 '15 at 12:44

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