I have used the below code in mysql query:

$all_PIDs=array();
foreach($pID as $p)
{
    $all_PIDs[]=$p->ID;
}
$AIDS=implode(',',$all_PIDs);
$table_tsk  = new Timesheets_Table_Tasks();
$select_tsk = $table_tsk->select()
            ->from($table_tsk, array
              (
                'Total'=>'SUM(timesheets_tasks.Time)',
                'Charged'=>'SUM(timesheets_tasks.Time_Charged)'
              ))
           ->where('timesheets_tasks.ProjectID IN ('.$AIDS.')')
            ;

But using the above code I am getting the following error:

"An error has occured SQLSTATE[42000]: Syntax error or access violation: 1064 You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near '))' at line 1"

I have added a quotation mark(") for IN clause. But the problem is the query only displays for the first $AIDS number. Could someone help me to clear the error? Thanks!

up vote 0 down vote accepted

It should be specified as:

->where('timesheets_tasks.ProjectID IN (?)', $all_PIDs)

so you're passing an array of integers, not the comma-separated list of it

  • Thank you for your reply. I have tried your suggestion. It displayed the wrong values. As per your suggestion,the out put is 43:30 28:45. I have tried the hard coded query like : ->where('timesheets_tasks.ProjectID IN(40,118,139)'). then the output is 51:30-34:30. So I think as per your suggestion the query only takes the first parameter(40) – NewPHP Aug 25 '13 at 23:57
  • @NewPHP: I have no idea what is 51:30-34:30. "So I think as per your suggestion the query only takes the first parameter" --- it accepts whatever you pass in array. If the result is unexpected - check what you passed in all_PIDs – zerkms Aug 25 '13 at 23:58
  • I mean it is the output. I just need to say the output is incorrect as per your suggestion. correct output is 51:30-34:30. But I am getting 43:30 28:45by using ->where('timesheets_tasks.ProjectID IN(?)',$AIDS). – NewPHP Aug 25 '13 at 23:58
  • @NewPHP: the output is incorrect per your query parameters, not by my answer. If you see the unexpected results - the issue is with you parameters not with this answer. – zerkms Aug 25 '13 at 23:59
  • Sorry, you are not getting my point. Let me explain. $AIDS is 40,118,139 as per my query. I have tried to use ->where('timesheets_tasks.ProjectID IN(?)',$AIDS) and getting output as 43:30 28:45. Then I have tried ->where('timesheets_tasks.ProjectID IN(40,118,139)') and getting output as 51:30-34:30. Hope they are the same query but different results – NewPHP Aug 26 '13 at 0:02

On your codes the quotes are not part of your MySQL query but only your PHP portion. DO this

$AIDS= "'".implode("','",$all_PIDs)."'";

And then

>where('timesheets_tasks.ProjectID IN ('.$AIDS.')'
  • So it will be timesheets_tasks.ProjectID IN ('1,2,3') – zerkms Aug 25 '13 at 23:48
  • @zerkms, Oh Yeah. Missed that. I have fixed it now. – Starx Aug 25 '13 at 23:52
  • @zerkms, I have fixed my error. Why are you still keeping the downvote? If you are not responsible for that vote I draw my comment. – Starx Aug 26 '13 at 0:03

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