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I am writing my first shell script. In my script I would like to check if a certain command exists, and if not, install the executable. How would I check if this command exists?

if #check that foobar command doesnt exist
then
    #now install foobar
fi
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2  
Just happened to come across. I think this is the same question as: stackoverflow.com/questions/592620/… , but it gives much more details. –  Jerry Tian Oct 23 '12 at 4:14
    
@JerryTian thanks for the link –  Andrew Oct 23 '12 at 16:26

4 Answers 4

up vote 50 down vote accepted

In general, that depends on your shell, but if you use bash, zsh, ksh or sh (as provided by dash), the following should work:

if ! type "$foobar_command_name" > /dev/null; then
  # install foobar here
fi

For a real installation script, you'd probably want to be sure that type doesn't return successfully in the case when there is an alias foobar. In bash you could do something like this:

if ! foobar_loc="$(type -p "$foobar_command_name")" || [ -z "$foobar_loc" ]; then
  # install foobar here
fi
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I like this answer. I tried not to be too swayed by ivants' image which I like even more ;) –  Michael Durrant Sep 23 '11 at 0:21
1  
hmm...when I change it to say if ! type "foo" > /dev/null; then I get the output on the screen "myscript.sh: line 12: type: foo: not found", however, it still seems to work because when I say if ! type "ls" > /dev/null; there is no output and the if statement does not get executed (since it returns true). How can I silence the output when the command doesnt exist? –  Andrew Sep 23 '11 at 20:37
3  
Andrew, try if ! type "foo" > /dev/null 2>&1; –  ivant Sep 26 '11 at 21:47
2  
> /dev/null 2>&1 is the same as &> /dev/null –  iuliux Sep 5 '12 at 8:54
    
Perfect. This works great. –  DrewVS Sep 27 '12 at 15:43

try using type:

type foobar

For example:

$ type ls
ls is aliased to `ls --color=auto'

$ type foobar
-bash: type: foobar: not found

This is preferable to which for a few reasons:

1) the default which implementations only support the -a option that shows all options, so you have to find an alternative version to support aliases

2) type will tell you exactly what you are looking at (be it a bash function or an alias or a proper binary).

3) type doesn't require a subprocess

4) type cannot be masked by a binary (for example, on a linux box, if you create a program called which which appears in path before the real which, things hit the fan. type, on the other hand, is a shell built-in [yes, a subordinate inadvertently did this once]

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1  
Could you put this in the form of an if/else statement (one that doesn't output to the console)? –  Andrew Sep 23 '11 at 2:37

Check if a program exists from a bash script covers this very well. In any shell script, you're best off running command -v $command_name for testing if $command_name can be run. In bash you can use hash $command_name, which also hashes the result of any path lookup, or type -P $binary_name if you only want to see binaries (not functions etc.)

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which <cmd>

also see options which supports for aliases if applicable to your case.

Example

$ which foobar
which: no foobar in (/usr/local/bin:/usr/bin:/cygdrive/c/Program Files (x86)/PC Connectivity Solution:/cygdrive/c/Windows/system32/System32/WindowsPowerShell/v1.0:/cygdrive/d/Program Files (x86)/Graphviz 2.28/bin:/cygdrive/d/Program Files (x86)/GNU/GnuPG
$ if [ $? -eq 0 ]; then echo "foobar is found in PATH"; else echo "foobar is NOT found in PATH, of course it does not mean it is not installed."; fi
foobar is NOT found in PATH, of course it does not mean it is not installed.
$

PS: Note that not everything that's installed may be in PATH. Usually to check whether something is "installed" or not one would use installation related commands relevant to the OS. E.g. rpm -qa | grep -i "foobar" for RHEL.

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which has other pitfalls as well –  Foo Bah Sep 22 '11 at 23:53
    
I was just starting to read man type to see how it's better.. may be you can save me some time by posting it here.. :) –  thekashyap Sep 22 '11 at 23:55
    
it's help type :) –  Foo Bah Sep 22 '11 at 23:56
    
The real trouble with which is that it is an external command, and won't be able to deal with the specifics of the current shell session internals, as it can have no knowledge of them. –  Henk Langeveld Feb 16 at 12:04

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