Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

My datatable just show "Processing" not the result. It's happened after I try to show another result from a column from my DB. First time I'm just show 8 column (include hidden ID column). But, After I add 1 column it become: enter image description here I got this after add Detail column. whether, if the data appears the table become wider so it show like this? Nothing error at query and firebug not show error.

if($ssWhere!="") {
                $sQuery = "SELECT prob_id,Model,Serial,Lotno,Date,Symptom,Cause,Status,CM,`Detail` FROM OQC ".$ssWhere.$sOrder.$sLimit;
                 } else {
                        $sQuery = "SELECT prob_id,Model,Serial,Lotno,Date,Symptom,Cause,Status,CM,`Detail` FROM OQC ".$sWhere.$sOrder.$sLimit;
                        }
        $rResult = mysql_query( $sQuery) or _doError(_ERROR30 . ' (<small>' . htmlspecialchars($sql) . '</small>): ' . mysql_error() );  // subm$

        $sQuery = "SELECT FOUND_ROWS()";
        $rResultFilterTotal = mysql_query( $sQuery) or _doError(_ERROR30 . ' (<small>' . htmlspecialchars($sql) . '</small>): ' . mysql_error() $
        $aResultFilterTotal = mysql_fetch_array($rResultFilterTotal);
        $iFilteredTotal = $aResultFilterTotal[0];

        $sQuery = "SELECT COUNT(prob_id) FROM OQC";

        $rResultTotal = mysql_query( $sQuery) or _doError(_ERROR30 . ' (<small>' . htmlspecialchars($sql) . '</small>): ' . mysql_error() );  //$
        $aResultTotal = mysql_fetch_array($rResultTotal);
        $iTotal = $aResultTotal[0];

//echo "sEcho is ".$_POST['sEcho'];

        $sOutput = '{';
        $sOutput .= '"sEcho": '.intval($_POST['sEcho']).',';     //   '.intval($_POST['sEcho']).', ';
        $sOutput .= '"iTotalRecords": '.$iTotal.', ';
//      $sOutput .= '"iTotalDisplayRecords": '.$iFilteredTotal.', \';
        $sOutput .= '"iTotalDisplayRecords": '.$iTotal.', ';
        $sOutput .= '"aaData": [ ';
        while ( $aRow = mysql_fetch_array( $rResult ) )
        {
                $sOutput .= "[";
                $sOutput .= '"'.addslashes($aRow['prob_id']).'",';
                $sOutput .= '"'.addslashes($aRow['Model']).'",';
                $sOutput .= '"'.addslashes($aRow['Serial']).'",';
                $sOutput .= '"'.addslashes($aRow['Lotno']).'",';
                $sOutput .= '"'.addslashes($aRow['Date']).'",';
                $sOutput .= '"'.addslashes($aRow['Symptom']).'",';
                $sOutput .= '"'.addslashes($aRow['Cause']).'",';
                $sOutput .= '"'.addslashes($aRow['Status']).'",';
                $sOutput .= '"'.addslashes($aRow['CM']).'",';
                $sOutput .= '"'.addslashes($aRow['Detail']).'"';
                $sOutput .= "],";
        }
        $sOutput = substr_replace( $sOutput, "", -1 );
        $sOutput .= '] }';

        echo $sOutput;

if not show the Detail all can work normally.Why?


at firebug show : Result

share|improve this question
    
I hate with this trouble, better I choose jqgrid. –  nunu Dec 27 '12 at 5:23
add comment

1 Answer

Hello you need to mention the column name in jquery datatable script.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.