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In one line of bash, how do I return an exit status of 0 when the output of /usr/local/bin/monit --version doesn't contain exactly 5.5 and an exit status of 1 when it does?

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! /usr/local/bin/monit --version | grep -q 5.5

(grep returns an exit-status of 0 if it finds a match, and 1 otherwise. The -q option, "quiet", tells it not to print any match it finds; in other words, it tells grep that the only thing you want is its return-value. The ! at the beginning inverts the exit-status of the whole pipeline.)

Edited to add: Alternatively, if you want to do this in "pure Bash" (rather than calling grep), you can write:

[[ $(/usr/local/bin/monit --version) != *5.5* ]]

([[...]] is explained in §3.2.4.2 "Conditional Constructs" of the Bash Reference Manual. *5.5* is just like in fileglobs: zero or more characters, plus 5.5, plus zero or more characters.)

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  • Effing genius! Power of pipe is continually impressive. – Joshua Pinter Oct 24 '17 at 19:58
  • Is there any to echo out the value of /usr/local/bin/monit --version when it fails as well? – Joshua Pinter Oct 24 '17 at 20:08
  • @JoshuaPinter: Please clarify -- what do you mean by "when it fails"? (Which direction is "failure"?) – ruakh Oct 24 '17 at 20:28
  • @ruakh When the exit code is 1, can it display the monit --version value while still exiting with a status of 1? – Joshua Pinter Oct 24 '17 at 20:55
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    @JoshuaPinter: That seems equivalent to monit --version; monit --version | grep -q 5.5; but I'm guessing you meant to use grep -q instead of bare grep? In that case you could simplify slightly to monit --version | grep -q 5.5 || (monit --version; false). And -- does monit --version ever print multiple lines? If not, then you can simplify down to just ! monit --version | grep -v 5.5. – ruakh Oct 25 '17 at 7:59
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[ $(/usr/local/bin/monit --version) == "5.5" ] 

eg-1: check for success

[ $(/usr/local/bin/monit --version) == "5.5" ] && echo "OK"

eg-2: check for failure

    [ $(/usr/local/bin/monit --version) == "5.5" ] || echo "NOT OK"

or, to just check if the output contains 5.5:

[[ $(/usr/local/bin/monit --version) =~ "5.5" ]] || echo "NOT OK"
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  • "5.5" will be part of a larger amount output. – Dane O'Connor Sep 11 '12 at 18:36
  • @perreal - You can't quote regex in bash, it makes it a literal string rather than a regex. (quoting works in some older versions of bash, but was fixed as a bug). – jordanm Sep 12 '12 at 0:36
  • @jordanm, that's not correct. If you don't quote 5.5 it will also match 5a5. The quotes make the dot a string. – perreal Oct 25 '18 at 7:18
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    @perreal I just tested it. [[ "5a5" =~ "5.5" ]] && echo yes prints nothing but [[ "5a5" =~ 5.5 ]] && echo yes print yes. The quoted version works in zsh, but not in bash. – jordanm Oct 25 '18 at 15:35
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Test the return value of grep:

sudo service xyz status | grep 'not' &> /dev/null
if [ $? == 0 ]; then
   echo "whateveryouwant"
fi

I would recommend cron, it works fine with SALT stack

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