this post was submitted on 26 Feb 2024
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Shell Scripting
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What is the return value ( $? ) from the function?
Not sure if
if..then
changes variable scope: it shouldn’t.I’ve always used
[[..]]
around tests, not sure if that changes variable scope.Where is the array first declared? Inside or outside the function?
Not at my computer at the moment, so I can’t give you a better answer. I’ll play with the idea later today.
The return value is either 0 or 1.
I don't know enough about coding to know what a variable's scope is. *SearXNG noises* You might be onto something. You think the function is being piped into a subshell?
Brackets didn't seem to help in my script; although maybe I should make a smaller test script just to rule out incompetence. (I'm guessing on the proper syntax for that, something like
if ! [[ $(name_of_function "$arguments") ]] ; then
, yes?)I've tried both versions.
name_of_array=()
in or out of the function, alsodeclare -a -g name_of_array
, if I'm remembering those arguments right, at the top of the script.Thanks for indulging my curiosity; I appreciate it.