-1

Inside a bash function, I'd like to set a local variable to the output of a command AND also check the command's return code. This is fairly straightforward with global variables, as illustrated here: Save command output on variable and check exit status

vagrant@ubuntu-bionic:/tmp$ cat bar.txt
cruft

vagrant@ubuntu-bionic:/tmp$ myfunc() {
> result=$(grep $1 bar.txt)
> echo $?
> }

vagrant@ubuntu-bionic:/tmp$ myfunc cruft
0
vagrant@ubuntu-bionic:/tmp$ myfunc bar
1

This doesn't work with a local variable.

vagrant@ubuntu-bionic:/tmp$ myfunc() {
> local result=$(grep $1 bar.txt)
> echo $?
> }

vagrant@ubuntu-bionic:/tmp$ myfunc cruft
0
vagrant@ubuntu-bionic:/tmp$ myfunc bar
0

Depending on the use case, I could test the value of $result for what I need and set a return accordingly. But...is there another/better way to do this?

marked as duplicate by Benjamin W. bash Feb 12 at 21:38

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  • 2
    ShellCheck says "Declare and assign separately to avoid masking return values. (more)" – that other guy Feb 12 at 20:50
  • What is it you want/need to do that myfunc () { grep "$1" bar.txt; } doesn't already do? The exit status of result=$(myfunc cruft) is the exit status of myfunc (which is the exit status of grep). – chepner Feb 12 at 20:51
  • @chepner I want to keep $result scoped to the function via a local variable. – Balok Feb 12 at 21:12