33

How do you pass an associative array as an argument to a function? Is this possible in Bash?

The code below is not working as expected:

function iterateArray
{
    local ADATA="${@}"            # associative array

for key in "${!ADATA[@]}"
do
    echo "key - ${key}"
    echo "value: ${ADATA[$key]}"

done

}

Passing associative arrays to a function like normal arrays does not work:

iterateArray "$A_DATA"

or

iterateArray "$A_DATA[@]"
  • See here as a start (I'm not honestly sure if it matters that it's an associate array - it may make a big difference or none at all) stackoverflow.com/questions/1063347/… – Telemachus Nov 1 '10 at 13:30
  • 2
    @Telemachus: Those techniques won't work since the array elements are being passed without their indices. – Dennis Williamson Nov 1 '10 at 15:11
  • @Dennis So that means that it does make a big difference that it's an associate array, yes? At least, I think that's what your comment tells me. – Telemachus Nov 2 '10 at 12:15
  • @Telemachus: Yes, it does make a big difference since associative arrays are completely dependent on their indices. Using the techniques shown at the linked question discards the index which is OK on a contiguous, numerically-indexed array, but might would also fail on a sparse, numerically-indexed array if the indices are important (the array gets re-indexed contiguously in the receiving function). – Dennis Williamson Nov 2 '10 at 14:02
  • The answers below don't answer the question: How to pass an associative array as argument to function? – lecodesportif Sep 1 '11 at 15:53
37

I had exactly the same problem last week and thought about it for quite a while.

It seems, that associative arrays can't be serialized or copied. There's a good Bash FAQ entry to associative arrays which explains them in detail. The last section gave me the following idea which works for me:

function print_array {
    # eval string into a new associative array
    eval "declare -A func_assoc_array="${1#*=}
    # proof that array was successfully created
    declare -p func_assoc_array
}

# declare an associative array
declare -A assoc_array=(["key1"]="value1" ["key2"]="value2")
# show associative array definition
declare -p assoc_array

# pass associative array in string form to function
print_array "$(declare -p assoc_array)" 
  • 1
    Caution: newlines in mapped values are replaced with a space inside the function. – Werner Lehmann May 12 '12 at 22:47
  • 1
    Extending the double quotes around the ${1#*=} fixes the whitespace issues. That said this isn't at all safe for arbitrary input. It needs to come from declare -p or it allows for arbitrary code execution. The pass-by-name version is safer. – Etan Reisner Oct 29 '15 at 1:45
  • 1
    I do not understand why ${1#*=} shouldn't be regular Bash parameter expansion. It's regular substring removal where the parameter is $1 and the pattern is *=. – Florian Feldhaus Nov 26 '15 at 7:21
  • 3
    I couldn't get this to work and apparently since Bash 4.3 there is declare -n. See this answer in another thread: stackoverflow.com/a/30894167/4162356 . – James Brown Jan 22 '16 at 12:31
  • 1
    is the eval necessary? Couldn't you just do declare -A local func_assoc_array=${1#*=} – solstice333 Mar 19 '18 at 6:11
10

Based on Florian Feldhaus's solution:

# Bash 4+ only
function printAssocArray # ( assocArrayName ) 
{
    var=$(declare -p "$1")
    eval "declare -A _arr="${var#*=}
    for k in "${!_arr[@]}"; do
        echo "$k: ${_arr[$k]}"
    done

}

declare -A conf
conf[pou]=789
conf[mail]="ab\npo"
conf[doo]=456

printAssocArray "conf" 

The output will be:

doo: 456
pou: 789
mail: ab\npo
  • This works . Thanks . Can you explain how does it work? – KT8 Nov 21 '18 at 7:08
6

Update, to fully answer the question, here is an small section from my library:

Iterating an associative array by reference

shopt -s expand_aliases
alias array.getbyref='e="$( declare -p ${1} )"; eval "declare -A E=${e#*=}"'
alias array.foreach='array.keys ${1}; for key in "${KEYS[@]}"'

function array.print {
    array.getbyref
    array.foreach
    do
        echo "$key: ${E[$key]}"
    done
}

function array.keys {
    array.getbyref
    KEYS=(${!E[@]})
}   

# Example usage:
declare -A A=([one]=1 [two]=2 [three]=3)
array.print A

This we a devlopment of my earlier work, which I will leave below.

@ffeldhaus - nice response, I took it and ran with it:

t() 
{
    e="$( declare -p $1 )"
    eval "declare -A E=${e#*=}"
    declare -p E
}

declare -A A='([a]="1" [b]="2" [c]="3" )'
echo -n original declaration:; declare -p A
echo -n running function tst: 
t A

# Output:
# original declaration:declare -A A='([a]="1" [b]="2" [c]="3" )'
# running function tst:declare -A E='([a]="1" [b]="2" [c]="3" )'
  • We could remove the duplicate line array.getbyref in array.print function. More performance gain. – Gnought Jul 2 '15 at 2:33
  • @Gnought - actually you can't :) – Orwellophile Jul 27 '15 at 4:33
4

You can only pass associative arrays by name.

It's better (more efficient) to pass regular arrays by name also.

  • 3
    You would do something like eval echo "\${$1[$key]}" in the function, and pass in the name of the variable, without the $. – tripleee Sep 6 '11 at 10:18
2

yo:

 #!/bin/bash
   declare -A dict

   dict=(
    [ke]="va"
    [ys]="lu"
    [ye]="es" 
   )

   fun() {
     for i in $@; do
       echo $i
     done
    }

   fun ${dict[@]} # || ${dict[key]} || ${!dict[@] || ${dict[$1]} 

eZ

  • You get my vote! This is the simplest, most straightforward answer that actually answers the question - and works. Perhaps some of the heavyweights will take a look at this answer and comment on any potential security risks, expansions, etc. Personally I don't see any, but then I'm not a heavyweight. @Nickotine should add some explanation of the extra parameters that are commented out on the last line. – Prisoner 13 Sep 27 '17 at 23:27
  • There is one issue I just noticed... my array contains 6 fields per line (key, dbhost, dbuser, dbpasswd, dbname, "String of several words" and the first field is the (string index) key. The above loop processes each field, rather than each line. Any clever ways to have it process each line? I find that I have to rebuild the array by walking through the loop. Is that expected? I am in fact having trouble rebuilding it, and adding the 6th field multi-word string. It overwrites the original 5 field line when try to add the 6th field later. – Prisoner 13 Sep 28 '17 at 22:21
  • @Prisoner13, sorry I forgot about this if you've got 6 fields seperated by a space and quoted then just add this at the top and you'll get each line IFS=$'\n' – Nickotine Jan 12 '18 at 23:10
1

Here is a solution I came up with today using eval echo ... to do the indirection:

print_assoc_array() {
    local arr_keys="\${!$1[@]}" # \$ means we only substitute the $1
    local arr_val="\${$1[\"\$k\"]}"
    for k in $(eval echo $arr_keys); do #use eval echo to do the next substitution
        printf "%s: %s\n" "$k" "$(eval echo $arr_val)"
    done
}

declare -A my_arr
my_arr[abc]="123"
my_arr[def]="456"
print_assoc_array my_arr

Outputs on bash 4.3:

def: 456
abc: 123
1

If you're using Bash 4.3 or newer, the cleanest way is to pass the associative array by name and then access it inside your function using a name reference with local -n. For example:

function foo {
    local -n data_ref=$1
    echo ${data_ref[a]} ${data_ref[b]}
}

declare -A data
data[a]="Fred Flintstone"
data[b]="Barney Rubble"
foo data

You don't have to use the _ref suffix; that's just what I picked here. You can call the reference anything you want so long as it's different from the original variable name (otherwise youll get a "circular name reference" error).

0

From the best Bash guide ever:

declare -A fullNames
fullNames=( ["lhunath"]="Maarten Billemont" ["greycat"]="Greg Wooledge" )
for user in "${!fullNames[@]}"
do
    echo "User: $user, full name: ${fullNames[$user]}."
done

I think the issue in your case is that $@ is not an associative array: "@: Expands to all the words of all the positional parameters. If double quoted, it expands to a list of all the positional parameters as individual words."

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