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Giving this array:

arr=(hello asd asd1 asd22 asd333)

I want to delete the a especific item by its value, for example asd. I did this:

IFS=' '
echo "${arr[@]/asd/}"

But it returns the following:

hello 1 22 333

So I did this function:

function remove_item() {
    local item_search="$1"
    shift
    local arr_tmp=("${@}")

    if [ ${#arr_tmp[@]} -eq 0 ]; then
        return
    fi

    local index=0
    for item in ${arr_tmp[@]}; do
        if [ "$item" = "$item_search" ]; then
            unset arr_tmp[$index]
            break
        fi
        let index++
    done

    echo "${arr_tmp[*]}"
}

arr=(asd asd1 asd22 asd333)

remove_item 'asd' "${arr[@]}"

Prints the desired output:

hello asd1 asd22 asd333

But I have to use it with very long arrays, and I have to call it a lot of times. And its performance sucks.

Do you have any better alternative to do it? Any tip, trick, or advice will be appreciatted.

share|improve this question
1  
Switch to Perl. – choroba Apr 1 '14 at 20:25
1  
Your question is a bit confusing, first you say that you want to delete the first item (i.e. delete by index) but the function you wrote deletes by value. So which is the goal? If the latter, you could use associative arrays if you have bash v>=4 and you wouldn't have to do the iteration. – Jakub Kotowski Apr 1 '14 at 20:25
    
Sorry. Post edited! I want to remove it by value. :) Thanks – ouhma Apr 1 '14 at 20:31
    
Is there any reason you have to use bash? Probably every other language will have better performance on "very long arrays". – j_random_hacker Apr 1 '14 at 20:31
    
Yes, I have a long program to modify. And I won't translate all it to another language. I'm looking for an efficient way to do it. If is on little better, is ok. Thanks – ouhma Apr 1 '14 at 20:33
up vote 2 down vote accepted

You could use a loop to iterate over the array and remove the element that matches the specified value:

for i in "${!arr[@]}"; do
  [[ "${arr[i]}" == "asd" ]] && unset arr[i]
done

If you know that the array would have at most one matching element, you could even break out of the loop:

  [[ "${arr[i]}" == "asd" ]] && unset arr[i] && break
                                            |^^^^^^^^|
                                             (this causes the loop to break
                                              as soon as the element is found)

As an example:

$ arr=(asd asd1 asd22 asd333)
$ for i in "${!arr[@]}"; do [[ "${arr[i]}" == "asd" ]] && unset arr[i]; done
$ echo "${arr[@]}"
asd1 asd22 asd333
share|improve this answer
    
But this code will be loop until the end of the array. And mine breaks at eh first match. Correct me if I'm wrong. – ouhma Apr 1 '14 at 21:42
    
@JohnDoe If you use the line with break, then it'd break at the first match. – devnull Apr 2 '14 at 2:23
    
I know. I mean, my function breaks at the first occurrence, and yours not. Then, I think mine would be most efficient, dont you think? – ouhma Apr 2 '14 at 6:34
    
@JohnDoe I assume that you didn't understand the break part. Refer to the edit above, I've added an explanation. If you use the line containing break instead in the loop, then it breaks as soon as the element is found. – devnull Apr 2 '14 at 6:48
    
haha, sorry. I didn't realice you had edited the post. Thanks for all, @devnull. All is clear now. :) – ouhma Apr 2 '14 at 6:57

Probably @devnull's answer is fastest. But it might possibly be faster not to use a loop and instead let grep do the work. Its not very pretty though:

$ arr=(hello asd asd1 asd22 asd333)
$ remove="asd"
$ i=$(paste -d: <(printf "%s\n" "${!arr[@]}") <(printf "%s\n" "${arr[@]}") | grep -m1 -w -E "^[[:digit:]]+:${remove}$")
$ unset arr[${i%:*}]
$ 
share|improve this answer

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