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So I'm attempting to make a start file which launches several screens each with their respective script. Looks a bit like:

cd /home/foo/
screen -dmS foo bash -c '/run.sh'
echo Started Foo

run.sh:

#!/bin/bash
while true
do
    java -Xmx1024M -XX:MaxPermSize=256M -server -jar foo.jar -o true
    sleep 5
done;

Now if I do screen -ls right after I run it, the screen shows up. However if I check a second later, the screens gone. Am I doing something wrong or is this the typical behavior?

share|improve this question
    
What does run.sh do? Does it stay running or does the script terminate? –  Greg Hewgill Apr 28 '14 at 3:57
    
It's a while true script that keeps a jar running. Added it's contents to the question. –  PaulBGD Apr 28 '14 at 3:58
1  
does /run.sh exist? is it executable? maybe mistype of ./run.sh ? what happens if you just exectue bash -c '/run.sh'? –  ymonad Apr 28 '14 at 4:04
    
Both produce no result. –  PaulBGD Apr 28 '14 at 4:08
2  
you should try executing screen -dmLS foo bash -c '/run.sh' . -L option turns on logging and outputs log into screenlog.0. see that log for what's happening. –  ymonad Apr 28 '14 at 4:19

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