It seems there is no /etc/rc.local in the latest stable version of Debian, Debian Stretch. Where is it? Is /etc/rc.local obsolete?

up vote 49 down vote accepted

rc.local is being deprecated.

It seems you can still have one though:

cat <<EOF >/etc/rc.local
#!/bin/sh -e
#
# rc.local
#
# This script is executed at the end of each multiuser runlevel.
# Make sure that the script will "exit 0" on success or any other
# value on error.
#
# In order to enable or disable this script just change the execution
# bits.
#
# By default this script does nothing.

exit 0
EOF
chmod +x /etc/rc.local
systemctl daemon-reload
systemctl start rc-local
systemctl status rc-local
● rc-local.service - /etc/rc.local Compatibility
   Loaded: loaded (/lib/systemd/system/rc-local.service; static; vendor preset: enabled)
  Drop-In: /lib/systemd/system/rc-local.service.d
           └─debian.conf
   Active: inactive (dead)
Condition: start condition failed at Wed 2017-06-28 11:32:36 UTC; 3min 13s ago

The vendor preset should be enabled. You can add some echo 123 >/proof to your rc.local and reboot, making sure it works - I confirm it does, using the last Debian Stretch AMI on EC2, ...

  • Thank you so much. I checked your solution, it works :) – Omidreza Bagheri Jun 29 '17 at 4:45
  • 34
    it's actually a big mistake deprecating such a proven parts of the system like rc.local! If you move to another things like systemd - OK, just don't use the old part for it, but why removing it? – Alexey Vesnin Jul 19 '17 at 2:44
  • It's also worth mentioning that /etc/rc.local is invoked from /etc/init.d/rc.local, the latter file belonging to initscripts package. At least if you have SysV init installed. – Bass Jul 24 at 18:26
  • 1
    Being deprecated in favor of what? – Teekin Aug 19 at 13:07

/etc/rc.local is not invoked from /etc/init.d/rc.local (at least on the Debian stretch system I've just installed today), because /etc/init.d/rc.local does not exist in that system.

  • 2
    kindly consider adding more information in your answer – Inder Aug 18 at 20:32

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.