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I need to loop over an associative array and drain the contents of it to a temp array (and perform some update to the value).

The leftover contents of the first array should then be discarded and i want to assign the temp array to the original array variable.

Sudo code:

declare -A MAINARRAY
declare -A TEMPARRAY
... populate ${MAINARRAY[...]} ...

while something; do     #Drain some values from MAINARRAY to TEMPARRAY
    ${TEMPARRAY["$name"]}=((${MAINARRAY["$name"]} + $somevalue))
done
... other manipulations to TEMPARRAY ...

unset MAINARRAY        #discard left over values that had no update
declare -A MAINARRAY
MAINARRAY=${TEMPARRAY[@]}  #assign updated TEMPARRAY back to MAINARRAY (ERROR HERE)
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See here: stackoverflow.com/questions/3112687/… –  user840803 Jul 12 '11 at 13:28
    
Yeh, that's what I've got now, was thinking there should be some more efficient way to rename the variable. –  David Parks Jul 12 '11 at 14:15
    
The solution by [FlorianFeldhaus] would work if just variable renaming was needed. Infact, it could be a single statement with a little help from sed like this: eval $(declare -p old_name |sed 's/old_name=/new_name=/') –  Samveen Jun 6 '13 at 23:12
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5 Answers

up vote 6 down vote accepted

With associative arrays, I don't believe there's any other method than iterating

for key in "${!TEMPARRAY[@]}"  # make sure you include the quotes there
do
  MAINARRAY["$key"]="${TEMPARRAY["$key"]}"
  # or: MAINARRAY+=( ["$key"]="${TEMPARRAY["$key"]}" )
done
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Copying associative arrays is not directly possible in bash. The best solution probably is, as already been pointed out, to iterate through the array and copy it step by step.

There is another solution which I used to pass variables to functions. You could use the same technique for copying associative arrays:

# declare associative array
declare -A assoc_array=(["key1"]="value1" ["key2"]="value2")
# convert associative array to string
assoc_array_string=$(declare -p assoc_array)
# create new associative array from string
eval "declare -A new_assoc_array="${assoc_array_string#*=}
# show array definition
declare -p new_assoc_array
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The eval seems to be necessary. Why is that? –  Michael Hoffman Oct 31 '12 at 22:36
1  
The ``eval'' is necessary because it declares the new array. The problem is, that declare -A expect a statement in the assignement and not a string. Thus you need to create a string and evaluate it as a statement. –  Florian Feldhaus Nov 1 '12 at 10:52
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This one-liner does an associative array copy: MAINARRAY=TEMPARRAY

eval $(typeset -A -p TEMPARRAY|sed 's/ TEMPARRAY=/ MAINARRAY=/')
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MAINARRAY=( "${TEMPARRAY[@]}" )
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That's what I thought, but I get an error on that line: "must use subscript when assigning associative array" –  David Parks Jul 12 '11 at 6:27
    
This won't work for associative arrays –  Luca Borrione Aug 27 '12 at 21:17
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Following both the suggestions of glenn jackman and ffeldhaus, you can build a function which might become handy:

function cp_hash
{
    local original_hash_name="$1"
    local copy_hash_name="$2"

    local __copy__=$(declare -p $original_hash_name);
    eval declare -A __copy__="${__copy__:$(expr index "${__copy__}" =)}";

    for i in "${!__copy__[@]}"
    do
        eval ${copy_hash_name}[$i]=${__copy__[$i]}
    done
}


Usage:

declare -A copy_hash_name
cp_hash 'original_hash_name' 'copy_hash_name'


Example:

declare -A hash
hash[hello]=world
hash[ab]=cd

declare -A copy
cp_hash 'hash' 'copy'

for i in "${!copy[@]}"
do
    echo "key  : $i | value: ${copy[$i]}"
done


Will output

key  : ab | value: cd
key  : hello | value: world
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