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In my .bashrc I define a function which I can use on the command line later, e.g.

function mycommand() {
    ssh user@123.456.789.0 cd testdir;./test.sh "$1"
}

When using this command, just the cd command is executed on the remote host, the test.sh command is executed on the local host. This is because the semikolon separates two different commands: the ssh command and the test.sh command.

If I define the function as follows (nore the single quotes)

function mycommand() {
    ssh user@123.456.789.0 'cd testdir;./test.sh "$1"'
}

I try to keep the cd command and the test.sh command together, but the argument $1 is not resolved, independent of what I give to the function. It is always tried to execute a command

./test.sh $1

on the remote host.

How to get it right, so the script test.sh is executed on the remote host after changing into the directory testdir, and the ability to pass on the argument I give to mycommand to test.sh?

share|improve this question
1  
This is unrelated to the main point, but you might want to use && instead of the semi-colon to join the commands executed on the remote host: cd testdir && ./test.sh "$1". With that form (because evaluation of && short-circuits in bash), if the cd fails the second command won't be executed, and you won't inadvertently run a different test.sh in user's homedir. –  Alp Aug 29 '13 at 7:09

2 Answers 2

up vote 12 down vote accepted

Do it this way instead:

function mycommand {
    ssh user@123.456.789.0 "cd testdir;./test.sh \"$1\""
}

You still have to pass the whole command as a single string, yet in that single string you need to have $1 expanded before it is sent to ssh so you need to use "" for it.

Update

Another proper way to do this actually is to use printf %q to properly quote the argument. This would make the argument safe to parse even if it has spaces, single quotes, double quotes, or any other character that may have a special meaning to the shell:

function mycommand {
    printf -v __ %q "$1"
    ssh user@123.456.789.0 "cd testdir;./test.sh $__"
}
  • When declaring a function with function, () is not necessary.
  • Don't comment back about it just because you're a POSIXist.
share|improve this answer
1  
this is vulnerable to command injection... –  Jo So Jun 25 '14 at 19:34
    
@JoSo Yes that's the basic of it so depending on usage the user can opt to sanitize the argument he needs it. With respect to basic ssh there's probably no better way - unless you do file transfers first, etc. –  konsolebox Jun 25 '14 at 21:21
2  
@JoSo Yes, a better approach would be to define a quote function like quote() { printf "'%q'" "$1"; }, and then do ssh user@host "cd testdir; ./test.sh $(quote "$1")" –  augurar Aug 5 '14 at 0:54

Reviving an old thread, but this pretty clean approach was not listed.

function mycommand() {
    ssh user@123.456.789.0 <<+
    cd testdir;./test.sh "$1"
+
}
share|improve this answer
    
This would fail if $1 would expand to a string having " and expandable characters like $ and `. –  konsolebox Jan 19 at 8:37
    
It doesn't "fail". It has the same effect as executing any non-ssh command with arguments. The OP wasn't asking for a lesson in double escaping arguments. Just how to get his second command to execute what [whatever] argument he was already intending. –  Ted Bigham Jan 19 at 18:09

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