Simple question -- what's the canonical way to test in bash whether yum or apt-get are present? I'm writing a script that will run on client machines and install unison, then create a cron job for it ...

up vote 8 down vote accepted

With bash script (or sh, zsh, ksh) you could use the builtin command -v yum and command -v apt-get.
(yes, the command is named command)

Zero output means it isn't there, otherwise you get the commands path.

You could then use a test statement to test whether the result was null or not.

[ -n "$(command -v yum)" ]
[ -n "$(command -v apt-get)" ]

Note: A downside to @ansgar-wiechers's suggested which is suppressing stderr for if 'yum' isn't present:

[ -n "$(which yum 2>/dev/null)" ]

An upside of which, is it isn't a shell builtin.

  • With the -v option, you can also just check the exit status: command -v yum > /dev/null && echo "yum found" – chepner May 16 '13 at 21:35
  • Or even better: PKG_MANAGER=$( command -v yum || command -v apt-get ) || echo "Neither yum nor apt-get found" – chepner May 16 '13 at 21:36

I'd probably use which:

[ -n "$(which apt-get)" ]
[ -n "$(which yum)" ]
command -v apt-get &>/dev/null

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