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As bash does not support multi-dimensional arrays, how can I fake it so I could access it like this:

#declare
array["foo"] = "bar"

#print
echo array["foo"] //how to display declared 'bar' here?

So the question is: what I need to do, to print out the bar when accessing array["foo"]?

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marked as duplicate by Vicky, Community, fedorqui, Alexander Vogt, oberlies Mar 5 at 11:41

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1 Answer 1

up vote 1 down vote accepted

You simply need to use associative arrays:

declare -A array=()

#declare
array["foo"]="bar"

#print
echo "${array["foo"]}"

And you can fake multi-dimensional arrays with it like

i=1
j=2
array[$i,$j]=1234
echo "${array[$i,$j]}"
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It only works for one element: declare -a array=(["moo"]="cow" ["john"]="doe") : echo "${array["moo"]}" //returns doe[!] which is wrong, echo "${array["john"]}" //returns doe aswell which is fine –  Lucas Sep 13 '13 at 11:35
    
When I do only one echo like echo ${array["moo"]}" it works fine, but problem appears when I want to print more than one array element. –  Lucas Sep 13 '13 at 11:36
    
@Lucas Make sure you declare your array as associative with declare -A not -a. –  konsolebox Sep 13 '13 at 11:37
    
Thats strange - I have used -a parameter because when I do -A this is what I get: declare: -A: invalid option declare: usage: declare [-afFirtx] [-p] [name[=value] ...] I am using the following bash: #!/usr/local/bin/bash –  Lucas Sep 13 '13 at 11:57
    
I think that declare -A is in 4.0 and later versions of bash. I'm running the 3.2.48. –  Lucas Sep 13 '13 at 12:07

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