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I would like to render this code more natural:

#!/bin/bash

 declare -ra dev_monikers=(foo bar baz)
 declare -ra starwars_expletives=(farkled kark crink)

 function f() {
   local -r weird_expansion="$1[@]"
   local -ra words_to_use=(${!weird_expansion})
   echo "${words_to_use[@]}"
 }

 f dev_monikers
 echo ---
 f starwars_expletives

Specifically: it seems very odd indeed to use that weird_expansion auxiliary variable. Is there a simpler way to do this in Bash?

Output from the above:

foo bar baz
---
farkled kark crink

Things I have tried which do not work:

words_to_use=(${${1}[@]}) # error
words_to_use=(${$1[@]}) # error
words_to_use=(${!$1[@]}) # error
words_to_use=(${!1[@]}) # error
words_to_use=(${!${1}[@]}) # error
words_to_use=(${${!1}[@]} # error

Making, in comparison, the initial absurdity look less unreasonable..

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1  
Long story short, no. That's the very best Bash-only non-eval non-nameref method. It's actually only marginally better than eval. Always use quotes in a compound assignment. x=("${!y}"). If you wanted to make this portable then things get quite a lot harder still. ${${... is never valid unless you're generating a PE through eval or similar. –  ormaaj Apr 1 '13 at 4:26

2 Answers 2

Try this:

function f() {
    eval "echo \${$1[@]}"
}
share|improve this answer
    
eval is "exciting": f '1}; $(mkdir /tmp/a_new_virus_found_a_home)' :( - does not happen with the other function.. –  Robottinosino Apr 1 '13 at 2:36

This isn't necessarily any more pretty, but does it without the auxiliary variable:

function f() {
    local -a words_to_use=($(eval echo \$\{${1}[@]\}))
    echo ${words_to_use[@]}
}
share|improve this answer
    
I am wary of direct eval on function parameters.. –  Robottinosino Apr 1 '13 at 3:18
    
Agreed, I would be wary of it too, unless you-the-script-writer has complete control over what gets passed to the function. –  Galen Charlton Apr 1 '13 at 16:35

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