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I want to make my cron command execute from a custom shell as follows:

SHELL=/bin/cron-launcher.sh
* * * * * test  echo "toto" >> /tmp/shell.log

The issue is that the file /tmp/shell.log is empty if i specify my own shell.

The content of my custom shell is as follows:

#!/bin/bash -e

#Script use to launch cron tasks

set -e

SHELL="/bin/bash -e"
LOGDIR="/var/log/cronlauncher/"

echo "$USER" > /tmp/test.log

The user used to launch the cron is very well outputted to the file /tmp/test.log but the cron command echo "toto" from the cron is never outputted to the file /tmp/shell.log .

How do I do to make the custom shell execute the cron command correctly.

That is to make the cron-launcher.sh script act as a wrapper.

Below is a extract of my /var/log/cron:

Dec 26 15:55:01 bf7fe8653ac9 CROND[658]: (test) CMD ( echo "toto" >> /tmp/shell.

  • cron-launcher.sh is no shell, it‘s a bash script. – Cyrus Dec 26 '16 at 15:58
  • That true, but i want to make it 'act' like shell – Kheshav Sewnundun Dec 26 '16 at 16:00
  • Or more simply to act as a wrapper between the shell – Kheshav Sewnundun Dec 26 '16 at 17:59
  • 1) and what is test ? 2) is /bin/cron-launcher.sh listed in /etc/shells ? – wildplasser Dec 26 '16 at 18:05
  • 1) test is the user test 2) No it is not listed in the /etc/shells – Kheshav Sewnundun Dec 27 '16 at 5:26
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The issue was solved by executing the 2nd argument parsed to the shell cron-launcher.sh

The fac is that the command echo "toto" >> /tmp/shell.log from the cron

SHELL=/bin/cron-launcher.sh * * * * * test echo "toto" >> /tmp/shell.log

is parsed as $2 in the shell cron-launcher.

Hence I juste had to modify my code as follows:

#!/bin/bash

#Script use to launch cron tasks

SHELL="/bin/bash"
LOGDIR="/var/log/cronlauncher/"

#echo "$USER" >> /tmp/test.log
COMMAND="$2"
eval $COMMAND

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