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I'm in process of extending my knowledge of bash scripting. I came across following snippet:

!/bin/bash
# background-loop.sh

for i in 1 2 3 4 5 6 7 8 9 10            # First loop. 
do
  echo -n "$i "
done & # Run this loop in background.
   # Will sometimes execute after second loop.

echo   # This 'echo' sometimes will not display.

for i in 11 12 13 14 15 16 17 18 19 20   # Second loop.
do
  echo -n "$i "
done  

echo word   # This 'echo' sometimes will not display.

It seems that this snippet output is non deterministic; and I would like to know why...

edit: so far; in 10 attempts "word" was always shown

edit2: sample outputs:

11 1 12 13 14 2 15 3 16 4 17 5 18 6 19 7 20 8 9 word
1 11 12 13 2 14 3 15 4 16 5 17 6 18 7 19 8 20 9 10 word
11 12 13 14 1 15 16 17 2 18 3 19 4 20 5 6 word
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2  
The "echo # This 'echo' sometimes will not display." is going to be a problem. Each a real word, not a blank line. You can't see a blank line echoing, so you think nothing is happening. After changing the echo, please update your question to include the actual log of an actual example of the actual error. –  S.Lott Mar 24 '11 at 21:51
2  
turn on your debugging set -vx, I bet you see all the commands getting executed. –  shellter Mar 24 '11 at 21:53
    
@shellter I executer 'set -vx ' and then run script; I had same result non determistic, except seeing name of script that I ran –  bbaja42 Mar 24 '11 at 22:15
1  
Free hint: Use the seq(1) command: for i in $(seq 1 10); do Note that BSD systems don't have seq(1) but have jot(1) which behaves almost exactly the same ... It's one of those great inter-UNIX(-like) incompatibilities :-( –  Carpetsmoker Mar 24 '11 at 22:20
1  
Free hint #2: If you don't use specific bash extensions to the bourne shell (And the above script doesn't), set the hashbang to #!/bin/sh, /bin/bash may not always be available. –  Carpetsmoker Mar 24 '11 at 22:22
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3 Answers

up vote 3 down vote accepted

Basically what is happening here is that you have 2 processes running at the same time. And as always in such case you cannot predict in which order they will execute. Every combination of output from first for loop and second for loop is possible.

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A loop, or any command, that runs in the background is run concurrently with the rest of the script. It might run on a different processor if you have a multi-core machine. The order in which things are depends on your number of cores, how busy the system is and the whims of the operating system scheduler.

With large amounts of I/O from multiple processes to the same terminal/file/whatever, you might even see outputs being mixed up.

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You can wait on bg tasks in scripts as follows:

# create a sentinel for exiting (is this the right term?)
export sentinel=".stopBgTask.$$"
# Run in the background and wait for sentinel to be created
i=1
while [ ! -e "$sentinel" ]
do echo $i
   i=$(($i + 1))
   sleep 1
done & # uncomment the & when you have no script errors

echo "Parent sleeping for a few seconds"
sleep 3
echo "stop the background task" > $sentinel
echo "Waiting for bg task to end..."
wait $! # wait for last bg task to end (kill $! would work too)
rm $sentinel
echo "We are done!"
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