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In a shell script (in .zshrc) I am trying to execute a command that is stored as a string in another variable. Various sources on the web say this is possible, but I'm not getting the behavior i expect. Maybe it's the ~ at the beginning of the command, or maybe it's the use of sudo, I'm not sure. Any ideas? Thanks

function update_install()
{
    # builds up a command as a string...
    local install_cmd="$(make_install_command $@)"
    # At this point the command as a string looks like: "sudo ~some_server/bin/do_install arg1 arg2"
    print "----------------------------------------------------------------------------"
    print "Will update install"
    print "With command: ${install_cmd}"
    print "----------------------------------------------------------------------------"
    echo "trying backticks"
    `${install_cmd}`
    echo "Trying \$()"
    $(${install_cmd})
    echo "Trying \$="
    $=install_cmd
}

Output:

Will update install
With command: sudo ~some_server/bin/do_install arg1 arg2

trying backticks
update_install:9: no such file or directory: sudo ~some_server/bin/do_install arg1 arg2
Trying $()
update_install:11: no such file or directory: sudo ~some_server/bin/do_install arg1 arg2
Trying $=
sudo ~some_server/bin/do_install arg1 arg2: command not found
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1  
you could use zsh -c '${install_cmd}' –  Alex Dec 2 '12 at 0:24

2 Answers 2

up vote 4 down vote accepted

Use eval:

eval ${install_cmd}
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Nice, simple approach. Thanks! –  darren Dec 2 '12 at 3:16

As explained in §3.1 "Why does $var where var="foo bar" not do what I expect?" of the Z-Shell FAQ, you can use the shwordsplit shell option to tell zsh that you want it to split variables up by spaces and treat them as multiple words. That same page also discusses alternatives that you might want to consider.

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hmm did not know about this FAQ, thanks for the pointer. –  darren Dec 2 '12 at 3:16

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