5

I want to write a function in bash that forwards arguments to cp command. For example: for the input

<function> "path/with whitespace/file1" "path/with whitespace/file2" "target path"

I want it to actually do:

cp "path/with whitespace/file1" "path/with whitespace/file2" "target path"

But instead, right now I'm achieving:

cp path/with whitespace/file1 path/with whitespace/file2 target path

The method I tried to use is to store all the arguments in an array, and then just run the cp command together with the array. Like this:

function func {
    argumentsArray=( "$@" )
    cp ${argumentsArray[@]}
}

unfortunately, It doesn't transfer the quotes like I already mentioned, and therefore the copy fails.

5

Just like $@, you need to quote the array expansion.

func () {
    argumentsArray=( "$@" )
    cp "${argumentsArray[@]}"
}

However, the array serves no purpose here; you can use $@ directly:

func () {
    cp "$@"
}
  • Thanks! It works when doing func "the file.txt" /tmp, however it shows an error when trying to use func "*.txt" /tmp. The reason is understood ("shell expansion", etc.), but... does a solution exist? – Ganton Aug 19 '19 at 17:09
  • Not a good one. I recommend writing func to you can call it as func /tmp *.txt, so that you can use shift to remove /tmp from the list of positional arguments and use "$@" to access the remaining arguments (which came from *.txt). – chepner Aug 19 '19 at 17:39

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