How can I launch a new process that is NOT a child of the original process?

Question

(OSX 10.7) An application we use let us assign scripts to be called when certain activities occur within the application. I have assigned a bash script and it's being called, the problem is that what I need to do is to execute a few commands, wait 30 seconds, and then execute some more commands. If I have my bash script do a "sleep 30" the entire application freezes for that 30 seconds while waiting for my script to finish.

I tried putting the 30 second wait (and the second set of commands) into a separate script and calling "./secondScript &" but the application still sits there for 30 seconds doing nothing. I assume the application is waiting for the script and all child processes to terminate.

I've tried these variations for calling the second script from within the main script, they all have the same problem:

• nohup ./secondScript &
• ( ( ./secondScript & ) & )
• ( ./secondScript & )
• nohup script -q /dev/null secondScript &

I do not have the ability to change the application and tell it to launch my script and not wait for it to complete.

How can I launch a process (I would prefer the process to be in a scripting language) such that the new process is not a child of the current process?

Thanks, Chris

p.s. I tried the "disown" command and it didn't help either. My main script looks like this:

[initial commands]
echo Launching second script
./secondScript &
echo Looking for jobs
jobs
echo Sleeping for 1 second
sleep 1
echo Calling disown
disown
echo Looking again for jobs
jobs
echo Main script complete

and what I get for output is this:

Launching second script
Looking for jobs
[1]+ Running ./secondScript &
Sleeping for 1 second
Calling disown
Looking again for jobs
Main script complete

and at this point the calling application sits there for 45 seconds, waiting for secondScript to finish.

p.p.s

If, at the top of the main script, I execute "ps" the only thing it returns is the process ID of the interactive bash session I have open in a separate terminal window.

The value of $SHELL is /bin/bash

If I execute "ps -p $$" it correctly tells me

PID   TTY TIME    CMD
26884 ??  0:00.00 mainScript

If I execute "lsof -p $$" it gives me all kinds of results (I didn't paste all the columns here assuming they aren't relevant):

FD   TYPE   NAME
cwd  DIR    /private/tmp/blahblahblah
txt  REG    /bin/bash
txt  REG    /usr/lib/dyld
txt  REG    /private/var/db/dyld/dyld_shared_cache_x86_64
0    PIPE   
1    PIPE   -> 0xffff8041ea2d10
2    PIPE   -> 0xffff 8017d21cb
3r   DIR    /private/tmp/blahblah
4r   REG    /Volumes/DATA/blahblah
255r REG    /Volumes/DATA/blahblah

Answer 1

The typical way of doing this in Unix is to double fork. In bash, you can do this with

( sleep 30 & )

(..) creates a child process, and & creates a grandchild process. When the child process dies, the grandchild process is inherited by init.

---

If this doesn't work, then your application is not waiting for child processes.

Other things it may be waiting for include the session and open lock files:

To create a new session, Linux has a setsid. On OS X, you might be able to do it through script, which incidentally also creates a new session:

# Linux:
setsid sleep 30

# OS X:
nohup script -q -c 'sleep 30' /dev/null &

To find a list of inherited file descriptors, you can use lsof -p yourpid, which will output something like:

sleep   22479 user    0u   CHR 136,32      0t0       35 /dev/pts/32
sleep   22479 user    1u   CHR 136,32      0t0       35 /dev/pts/32
sleep   22479 user    2u   CHR 136,32      0t0       35 /dev/pts/32
sleep   22479 user    5w   REG  252,0        0  1048806 /tmp/lockfile

In this case, in addition to the standard FDs 0, 1 and 2, you also have a fd 5 open with a lock file that the parent can be waiting for.

To close fd 5, you can use exec 5>&-. If you think the lock file might be stdin/stdout/stderr themselves, you can use nohup to redirect them to something else.

Answer 2

Another way is to abandon the child

#!/bin/bash

yourprocess &

disown

As far as I understand, the application replaces the normal bash shell because it is still waiting for a process to finish even if init should have taken care of this child process. It could be that the "application" intercepts the orphan handling which is normally done by init.

In that case, only a parallel process with some IPC can offer a solution (see my other answer)

Answer 3

I think it depends on how your parent process tries to detect if your child process has been finished. In my case (my parent process was gnu make), I succeed by closing stdout and stderr (slightly based on the answer of that other guy) like this:

sleep 30 >&- 2>&- &

You might also close stdin

sleep 30 <&- >&- 2>&- &

or additionally disown your child process (not for Mac)

sleep 30 <&- >&- 2>&- & disown

Currently tested only in bash on kubuntu 14.04 and Mac OSX.

Answer 4

If all else fails:

1. Create a named pipe

2. start the "slow" script independent from the "application", make sure executes it's task in an endless loop, starting with reading from the pipe. It will become read-blocked when it tries to read..

3. from the application, start your other script. When it needs to invoke the "slow" script, just write some data to the pipe. The slow script will start independently so your script won't wait for the "slow" script to finish.

So, to answer the question:
bash - how can I launch a new process that is NOT a child of the original process?

Simple: don't launch it but let an independent entity launch it during boot...like init or on the fly with the command at or batch

Answer 5

Here I have a shell

└─bash(13882)

Where I start a process like this:

$ (urxvt -e ssh somehost&)

I get a process tree (this output snipped from pstree -p):

├─urxvt(14181)───ssh(14182)

where the process is parented beneath pid 1 (systemd in my case).

However, had I instead done this (note where the & is) :

$ (urxvt -e ssh somehost)&

then the process would be a child of the shell:

└─bash(13882)───urxvt(14181)───ssh(14182)

In both cases the shell prompt is immediately returned and I can exit without terminating the process tree that I started above.

For the latter case the process tree is reparented beneath pid 1 when the shell exits, so it ends up the same as the first example.

├─urxvt(14181)───ssh(14182)

Either way, the result is a process tree that outlives the shell. The only difference is the initial parenting of that process tree.

For reference, you can also use

• nohup urxvt -e ssh somehost &
• urxvt -e ssh somehost & disown $!

Both give the same process tree as the second example above.

└─bash(13882)───urxvt(14181)───ssh(14182)

When the shell is terminated the process tree is, like before, reparented to pid 1.

nohup additionally redirects the process' standard output to a file nohup.out so, if that is a useful trait, it may be a more useful choice.

Otherwise, with the first form above, you immediately have a completely detached process tree.