29

How do I pass all the arguments of one shell script into another? I have tried $*, but as I expected, that does not work if you have quoted arguments.

Example:

$ cat script1.sh

#! /bin/sh
./script2.sh $*

$ cat script2.sh

#! /bin/sh
echo $1
echo $2
echo $3

$ script1.sh apple "pear orange" banana
apple
pear
orange

I want it to print out:

apple
pear orange
banana
32

Use "$@" instead of $* to preserve the quotes:

./script2.sh "$@"

More info:

http://tldp.org/LDP/abs/html/internalvariables.html

$*
All of the positional parameters, seen as a single word

Note: "$*" must be quoted.

$@
Same as $*, but each parameter is a quoted string, that is, the parameters are passed on intact, without interpretation or expansion. This means, among other things, that each parameter in the argument list is seen as a separate word.

Note: Of course, "$@" should be quoted.

  • Thanks, that worked. – dogbane Dec 31 '09 at 22:00
  • I that has issues with parenthesis - I ran into it and was unable to solve it myself. – Penz Dec 25 '15 at 22:32

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.