45

This question already has an answer here:

If I pass any number of arguments to a shell script that invokes a Java program internally, how can I pass second argument onwards to the Java program except the first?

./my_script.sh a b c d ....

#my_script.sh
...
java MyApp b c d ...

marked as duplicate by Ciro Santilli 新疆改造中心996ICU六四事件, Code Lღver, tripleee bash Apr 10 '15 at 8:02

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75

First use shift to "consume" the first argument, then pass "$@", i.e., the list of remaining arguments:

#my_script.sh
...
shift
java MyApp "$@"
  • 4
    The special parameter @ should "always" be quoted: "$@", otherwise is not different from $*. Also, should be mentioned that after the shift, if not previously saved, the first parameter is lost. – enzotib Oct 22 '10 at 10:37
  • @enzotib Thanks, I've quoted $@. – Bolo Oct 22 '10 at 10:58
  • 4
    Doesn't quoting it cause all the arguments to be passed as a single argument, a list of space-separated arguments? I assume not, given the popularity of this answer, but maybe you can explain. – Edward Anderson Aug 14 '14 at 13:17
  • 2
    @nilbus: $@ is a special parameter, and behaves differently from other variables. See gnu.org/software/bash/manual/html_node/Special-Parameters.html. – Collin Aug 5 '16 at 20:07
39

You can pass second argument onwards without using "shift" as well.

set -- 1 2 3 4 5

echo "${@:0}"
echo "${@:1}"
echo "${@:2}"   # here
  • 9
    does not work in sh, only bash. this is called substring expansion and has a special behaviour for @. usually it counts the characters, but for @ it counts the parameters. – lesmana Oct 22 '10 at 13:46

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