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Suppose I have some bash arrays:

A1=(apple trees)
A2=(building blocks)
A3=(color television)

And index J=2, how to get the array contents of A2?

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This is very cool. I consider myself a bash expert and I was always under the assumption that bash cannot do array indirection such as ${!ind[@]} but I never thought to introduce a temp var to solve it. –  SiegeX Jan 3 '11 at 5:08
    
Interesting question/answer! –  ring0 Jan 3 '11 at 5:44
    
You should post your answer as an answer. You will be able to accept it when the time limit expires. Here is an example of the usual way that arrays are used with indirection: d=13; e=24; f=35; a=(d e f); echo ${!a[1]} which results in "24". –  Dennis Williamson Jan 3 '11 at 5:51

3 Answers 3

up vote 18 down vote accepted

I've already found a resolution, this can be done by:

$ Aref=A$J
$ echo ${!Aref}
building
$ Aref=A$J[1]
$ echo ${!Aref}
blocks
$ Aref=A$J[@]
$ echo "${!Aref}"
building blocks
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1  
How can you assign to, say, A$J? You need a name without expansion to assign to, but A$J=(...) doesn't work. –  musiphil Feb 28 '13 at 6:54
    
that's the letter "A" followed by the contents of the variable "J". If J == 2, then you could see it as A + ${J} == A2 –  Felipe Alvarez Apr 22 '14 at 6:02
    
To assign, use let: let "A${J}[3]"="8". See my answer –  BinaryZebra Aug 28 at 18:35

It’s worth to note, that even an index will be substituted at time the variable is evaluated:

$ A2=(building blocks)
$ Aref=A2[index]
$ index=1
$ echo "${!Aref}"
blocks
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FANTASTIC. years of shell scripting + reading the manual at least a dozen times + explicit attempts at exactly this failed to surface this little gem! note, like literal indexes, any arithmetic expression is valid, including nested expansions, eg. cycle=(0 1 2); ref='cycle[i++%${#cycle[*]}]'; echo ${!ref} ${!ref} ${!ref} ${!ref} ${!ref} ${!ref} # => 0 1 2 0 1 2 –  anthonyrisinger May 13 '13 at 3:35
    
I wonder if this is a feature explicitly intended to be so, or if we are exploiting side-effect of the indirect expansion, which could silently disappear from future releases. –  davide Jan 29 '14 at 2:36

The other solutions presented work on the assumption that the name of the array variable is known or available.

To truly access an array in-directly, i.e. when the name of the var array is NOT known before the execution of the script, we could use the new variable indirection with an (!) ${!var} in bash. Let me present an example:

#!/bin/bash

# This line is only to set an array to work with.
arr=( {0..10} )         # fill with values from 0 to 10.

swapvars(){             # function to **indirectly** swap two values in an array
    local var="$1"      # NAME of the var to set (i.e.: to use indirectly)

    indexone="$(( $2 ))"                # First index (cast to int) to swap.
    pointvarone="${var}[$indexone]"     # text structure of the value to read:
    varone="${!pointvarone}"            # finally, access the content indirectly.

    indextwo="$(( $3 ))"                # Second index (cast to int) to swap.
    pointvartwo="${var}[$indextwo]"     # text structure of the value to read:
    vartwo="${!pointvartwo}"            # finally, access the content indirectly.

    # Swap values
    temp="${varone}"                    # store the value to set.
    let "$pointvarone"="${vartwo}"      # Use let to perform the INDIRECT assignement.
    let "$pointvartwo"="$temp"          # Use let to perform the INDIRECT assignement.
}

# print the full arr as it was set originally.
printf "Before :"; printf "%s " "${arr[@]}"; echo

# swap two values of an in-directed array equiv to arr[i]<==>arr[j]
swapvars arr 5 8

# print the full arr to see the effect of the swapped values
# written in a simple way (without indirection) for easier understanding.
printf "After  :"; printf "%s " "${arr[@]}"; echo

swapvars arr 5 2
printf "After2 :"; printf "%s " "${arr[@]}"; echo

As executed:

$ ./script
Before :0 1 2 3 4 5 6 7 8 9 10 
After  :0 1 2 3 4 8 6 7 5 9 10 
After2 :0 1 8 3 4 2 6 7 5 9 10 

This solution is safer than the older solutions with eval and or printf -v.

Note: The let allows only integers. If you do need text, the eval is the only solution AFAIK, change this three lines to get text exchange:

arr=( {a..z} )                         # To use single letters.
    eval "$pointvarone"="\${vartwo}"   # the same idea but with eval.
    eval "$pointvartwo"="\$temp"       # again for temp.

And, maybe printf is more secure (no quoting issues):

    printf -v "$pointvarone" '%s' "${vartwo}"
    printf -v "$pointvartwo" '%s' "$temp" 
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