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I have:

$array_worker['$worker_id']=$worker_name;  
$array_job['$job_id']=$job_name;  

I have no problem with dynamic create table with checkbox and store data in database:

The data are stored in table as worker_id,job_id!
Normally, worker may work more than one job, so I create multidimensional array from table in which the stored data!

$array_worded['$worker_id'][]=$job_id;  

My question is:

How create dynamic table with checked checkboxes based on array_worked array?

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1  
I have no idea what you're asking. Also, no one here will write code for you. –  Erik Sep 14 '12 at 5:33
    
array_worked????????????????? –  asprin Sep 14 '12 at 5:50
1  
@asprin: worker, please don't patronize over obvious typos. –  Madara Uchiha Sep 14 '12 at 5:53
    
It might have been over obvious to you, but it didn't struck me that it was a typo. –  asprin Sep 14 '12 at 6:02

2 Answers 2

$table='';

  foreach($array_worker as $key=>$value){
    $table.=''.$value.''; // worker name
      $worker_id = // get worker id from $array_worker

      foreach($array_job as $key_job=>$val_job)
      {
        $job_id = // get job id from $array_job 

        $checked = false;
        foreach( $array_worked[$worker_id] as $key_worked => $val_worked )
        {
          if( $job_id == $val_worked ) // $val_worked contains $job_id
          {
            $checked = true;
            break;
          }
        }
        $table.='<input type="checkbox"' . ( $checked ? ' checked="checked"' : '') . '/>'.$val_job.''; // all jobs from database    
      }
    $table.='';           
  }
$table.='';

I may make some mistakes in syntax, but code demonstrates basic principle.

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Thanks for the quick reply! –  markodurek Sep 14 '12 at 5:55
    
Thanks doktorgradus, it works perfectly! The only thing I do not understand is line 12 where joining variable $worker_id to $array_worked! Can you explain it to me? Thanks! –  markodurek Sep 14 '12 at 10:39
    
Which line is twelve? foreach( $array_worked[$worker_id] as $key_worked => $val_worked ) - this? –  doktorgradus Sep 14 '12 at 15:16
    
Yes, that line! I do not understand why is variable $worker_id assign to $array_worked? Many thanks! –  markodurek Sep 14 '12 at 16:16
    
Because $array_worded['$worker_id'][]=$job_id;. $array_worded => $array_worked, right? In first cell ['$worker_id'] you keep $worker_id. In foreach loop at line 12 we get not all array, but only job_ids for current $worker_id. –  doktorgradus Sep 14 '12 at 16:27

It is so simple :

<input type="checkbox" name="formWheelchair"  
<?php
$DATABASE-VALUE = $array_worded['$worker_id'][] = $job_id; // OR WHAT EVER
switch ($DATABASE-VALUE) {
    case 0:
        echo checked />"
        break;
........
}
?>
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