8
function f() {
    for arg; do
        echo "$arg"
    done
}

f 'hello world' 'second arg' '3rdarg'

this works fine:

hello world
second arg
3rdarg

but when do I assign $@ to some variable, and then it goes wrong:

function f() {
    local args="$@"
    for arg in "$args"; do
        echo "$arg"
    done
}

output:

hello world second arg 3rdarg

when I unquote the $args, then each argument was split into single word:

hello
world
second
arg
3rdarg

Lastly, I wonder if there's a way to define variable like $@. Any response will be appreciated.

4
  • 1
    The generic way to assign a new value to $@ is: set -- "first argument" "second argument" "etc". Commented Nov 10, 2015 at 4:46
  • ...but yes, as you've discovered here, you can't represent an array of strings in a variable whose type is a scalar (thus, a single string). Commented Nov 10, 2015 at 4:47
  • Since the $@ is an array as you indicated, then how to manipulate it as an regular array variable, such as unset ${array[1]}, ${array[1]} = 'hello', etc? Or it's just s special case, and the only way to manipulate is use the shift,unshift and set? Additionally, the '-p' option of the 'declare' built-in could print the related type of the var, could it be used against the $@ var as well?
    – oxnz
    Commented Nov 10, 2015 at 5:43
  • Yes, it's a special case (it's the only array available in POSIX sh, with which standard bash complies, which doesn't otherwise support arrays). No, declare -p and like tools don't work for "$@". Commented Nov 10, 2015 at 14:01

1 Answer 1

7

You'll need to use an array:

function f() {
    local args=("$@")             # values in parentheses
    for arg in "${args[@]}"; do   # array expansion syntax
        echo "$arg"
    done
}

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