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I'm storing a list of items in a serialized array within a field in my database (I'm using PHP/MySQL). Each user have this serialized array in own table. I need to count how many user has one item of the serialized array.

For example:

serialized array may contains(0,1,2,3,4,5,6,7,8)

user a; a:2:{i:0;s:1:"6";i:1;s:1:"7";}

user b; a:1:{i:0;s:1:"6";}

user c; a:3:{i:0;s:1:"6";i:1;s:1:"7";i:2;s:1:"2";}

i need this result;

count("0") = 0

count("1") = 0

count("2") = 1

count("3") = 0

count("4") = 0

count("5") = 0

count("6") = 3

count("7") = 2

count("8") = 0

Hopefully that makes sense. Any ideas would be greatly appreciated. Thanks

share|improve this question
    
MySQL cannot work with that format. You will have to retrieve the entries and do the counting/grouping yourself. Btw, CSV is a format databases at least work with; otherwise put the entries into a separate user_id-related table. –  mario Oct 31 '12 at 9:43
    
It would be easier if you stored those numbers in separate table. user_id | number. –  dfsq Oct 31 '12 at 9:48

2 Answers 2

You can use two loops.

$arrCount = array();
foreach($arrUsers $user_key=>$count_data){
foreach($count_data => $val){
   if(isset($arrCount[$val]))
   {
       $arrCount[$val]++;
   }else{
       $arrCount[$val] = 1;
   }
}}
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You can make a simple function, that walks through every single userarray. Notice that I unserialize the array before counting. This code will give the desirable result.

<?php

function countElement($userArray, $value) {
    $cnt = 0;
    if(!empty($userArray)) {
        foreach($userArray as $user) {
            $unserializeArr = unserialize($user);
            $tmp = array_count_values($unserializeArr);
            if(isset($tmp[$value])) $cnt += $tmp[$value];
        }
    }
    return $cnt;
}

$userArr = array();
$userArr[] = 'a:2:{i:0;s:1:"6";i:1;s:1:"7";}';
$userArr[] = 'a:1:{i:0;s:1:"6";}';
$userArr[] = 'a:3:{i:0;s:1:"6";i:1;s:1:"7";i:2;s:1:"2";}';

for($i = 0; $i <= 8; $i++) {
    echo 'Count('.$i.') = '.countElement($userArr, $i).'<br>';
}

?>
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