559

Let's say I have defined a function abc() that will handle the logic related to analyzing the arguments passed to my script.

How can I pass all arguments my bash script has received to it? The number of params is variable, so I can't just hardcode the arguments passed like this:

abc $1 $2 $3 $4

Edit. Better yet, is there any way for my function to have access to the script arguments' variables?

  • 2
    Possible duplicate of Propagate all arguments in a bash shell script. (This question was actually posted before the one linked here. But the one in the link has more detailed answers and a more informative title and may be best as the reference question) – prosoitos Oct 25 at 21:46
896

The $@ variable expands to all command-line parameters separated by spaces. Here is an example.

abc "$@"

When using $@, you should (almost) always put it in double-quotes to avoid misparsing of arguments containing spaces or wildcards. This works for multiple arguments. "$*" will be passed as one long string.

It is also worth nothing that $0 is not in $@.

The Bash Reference Manual Special Parameters Section says that $@ expands to the positional parameters starting from one. When the expansion occurs within double quotes, each parameter expands to a separate word. That is "$@" is equivalent to "$1" "$2" "$3"....

If you want to pass all but the first arguments, you can first use shift to "consume" the first argument and then pass $@ to pass the remaining arguments to another command. In bash (but not in plain POSIX shells), you can do this without messing with the argument list using a variant of array slicing: "${@:3}" will get you the arguments starting with "$3". "${@:3:4}" will get you up to four arguments starting at "$3" (i.e. "$3" "$4" "$5" "$6"), if that many arguments were passed.

  • Read more on why it is important to have the double " around here: stackoverflow.com/a/4824637/4575793 – Cadoiz Jul 13 at 15:54
  • "${@:3}" doesn't seem to work with zsh. – BiBi Sep 24 at 23:12
  • @Bibi It works in zsh (v 5.3) for me, in both scripts and functions. How are you testing it? – Gordon Davisson Sep 25 at 2:14
  • Extra comment: $* will be a single string with the first character of IFS being the concatenating element. – kvantour Oct 25 at 15:49
  • @kvantour That's what happens if $* is in double-quotes. If it's unquoted, it's subject to word splitting and wildcard expansion, so it immediately gets re-split back to the elements and any elements that contain $IFS characters will also get split (and then any wildcards get expanded). Net result: without double-quotes, $* and $@ wind up giving the same result. – Gordon Davisson Oct 25 at 20:47
139

I needed a variation on this, which I expect will be useful to others:

function diffs() {
        diff "${@:3}" <(sort "$1") <(sort "$2")
}

The "${@:3}" part means all the members of the array starting at 3. So this function implements a sorted diff by passing the first two arguments to diff through sort and then passing all other arguments to diff, so you can call it similarly to diff:

diffs file1 file2 [other diff args, e.g. -y]
  • 16
    The "${@:3}" is also great when you have scripts that have arguments, but can also pass arguments to other scripts that they call. For example, a project of mine has a script for easily running the program, with an argument for the main class to use. Then "${@:2}" can be used to pass the remaining arguments to that entry point. – Kat Jul 14 '14 at 18:45
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    @Kat already mentioned this, but to clarify (in case you still have doubts): command "$@" is equivalent to command $1 "${@:2}". – Mahn Apr 7 '16 at 22:38
52

Use the $@ variable, which expands to all command-line parameters separated by spaces.

abc "$@"
44

Here's a simple script:

#!/bin/bash

args=("$@")

echo Number of arguments: $#
echo 1st argument: ${args[0]}
echo 2nd argument: ${args[1]}

$# is the number of arguments received by the script. I find easier to access them using an array: the args=("$@") line puts all the arguments in the args array. To access them use ${args[index]}.

  • 3
    it would be ${args[0]} for the first argument :o – Mr. King Sep 15 '12 at 0:04
  • 3
    What benefit does passing $@ into an array provide over just calling the arguments by index (for example, $1)? – Kingand May 30 '14 at 16:12
  • Voting up with the agreement with @King that this needs to be array at [0] for first element. – Joseph Juhnke Mar 18 '15 at 18:38
  • 1
    Somehow I missed it. Fixed, thanks for pointing it out. – Giuseppe Cardone May 18 '15 at 21:31
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    Any future readers should note that the shebang in this example is incorrect. sh does not support arrays, that is a bash feature. The only reason this could work is if your OS has symlinked /bin/sh to bash or you call the script with bash script.sh. – WhiteAbeLincoln Jul 18 '18 at 17:38
34

It's worth mentioning that you can specify argument ranges with this syntax.

function example() {
    echo "line1 ${@:1:1}"; #First argument
    echo "line2 ${@:2:1}"; #Second argument
    echo "line3 ${@:3}"; #Third argument onwards
}

I hadn't seen it mentioned.

  • 1
    You can just use $1, $2,... for the first two – rubo77 Nov 16 '16 at 4:42
  • @rubo77 I've corrected the wording of my answer to include "range" thanks. – robstarbuck Nov 22 '16 at 23:25
18
abc "$@"

$@ represents all the parameters given to your bash script.

14

abc "$@" is generally the correct answer. But I was trying to pass a parameter through to an su command, and no amount of quoting could stop the error su: unrecognized option '--myoption'. What actually worked for me was passing all the arguments as a single string :

abc "$*"

My exact case (I'm sure someone else needs this) was in my .bashrc

# run all aws commands as Jenkins user
aws ()
{
    sudo su jenkins -c "aws $*"
}
  • 2
    Hey OP, looks like you may have a typo on the abc example – dannypaz May 10 at 18:44
  • 2
    Exactly what I needed. My command was wrapped in quotes and this was the only thing that worked for me. – Toofy May 24 at 16:26
  • 2
    Probably the way to use, but be aware of the risk when you use string arguments. Please look at the "$*" example here: stackoverflow.com/a/46205560/4575793 (This is more on '$@' vs '$*' plus there quoted variants) – Cadoiz Jul 13 at 16:03

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