120

I try to run a background job in a for loop in bash:

for i in $(seq 3); do echo $i ; sleep 2 & ; done

I get error:

bash: syntax error near unexpected token `;'

In zsh the command line works.

2
  • 3
    Which bit are you trying to place in background? as that reads you're trying to do the sleep in background which would be pointless..
    – BugFinder
    Sep 18, 2012 at 8:20
  • 7
    sleep is only to test my loop before the real case.
    – bougui
    Sep 18, 2012 at 9:05

3 Answers 3

171

Remove the ; after sleep

for i in $(seq 3); do echo $i ; sleep 2 & done

BTW, such loops are better written on separate lines with proper indentation (if you are writing this in a shell script file).

for i in $(seq 3)
do
   echo $i
   sleep 2 &
done
5
  • 7
    Keep in mind that it will send "sleep 2" to background only.
    – tamerlaha
    Mar 16, 2017 at 11:55
  • Why is it when I do this with $i in the backgrounded command, job control says the process name contains $i instead of whatever the actual value of $i was?
    – Michael
    Aug 6, 2020 at 22:40
  • @Michael Full program with output would help to understand better
    – gammay
    Aug 7, 2020 at 6:53
  • for I in <whatever>; do rm -fr $I & done ... jobs -> rm -fr $I several times, instead of the actual dir being deleted for each job
    – Michael
    Aug 7, 2020 at 16:45
  • I have answer for this, its long. So i think you should post it as a new question (and add that question link here), I will answer and you will also get more responses.
    – gammay
    Aug 8, 2020 at 7:17
52

You can put the background command in ( )

for i in $(seq 3); do echo $i ; (sleep 2 &) ; done
1
  • 23
    Please be aware: You create a subshell by that. It also means you will not be able to wait for the background jobs to end.
    – JFK
    Mar 7, 2018 at 7:13
4

If you want to run a block of code in the background, you could do the below. Just put the block of code around the curly braces.

{ for i in $(seq 3); do echo $i ; sleep 2 ; done } &

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