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Is it possible to display saved values in dropdown from mysql to php when i login again? My codes saves the value in Mysql. But when i login back, it displays blanks field (which is default in dropdown list)

$sql = "SELECT Program_Description FROM programs";
$result = mysqli_query($dbc, $sql);
$dropdown = "<select name='Program_Description'>";
$dropdown .= "<option value= ></option>";
while($row = mysqli_fetch_assoc($result)) {
$dropdown .= "\r\n<option value='{$row['Program_Description']}'>{$row ['Program_Description']}     </option>";
}
$dropdowna .= "\r\n</select>";
share|improve this question
    
use selected with option you want to see as default like <option selected value= ></option> –  Sameer Sep 18 '13 at 10:25
    
why are you using \r –  Anto Vinish Sep 18 '13 at 10:26

2 Answers 2

up vote 1 down vote accepted

Do this

 //Suppose the $selecteValue contains the selected value which you have fetched from the database
 $selectedValue = 'test';

 $sql = "SELECT Program_Description FROM programs";
 $result = mysqli_query($dbc, $sql);
 $dropdown = "<select name='Program_Description'>";
 $dropdown .= "<option value= ></option>";
 while($row = mysqli_fetch_assoc($result)) {
      $dropdown .= "\r\n<option ".(($selectedValue == $row['Program_Description']) ? ' selected ' : '')." value='{$row['Program_Description']}'>{$row['Program_Description']}     </option>";
 }
 $dropdowna .= "\r\n</select>";

Another solution would be to

   $sql = "SELECT Program_Description FROM programs";
   $result = mysqli_query($dbc, $sql);
   $dropdown = "<select name='Program_Description'>";
   $dropdown .= "<option value= ></option>";
   $strSelect = '';
   while($row = mysqli_fetch_assoc($result)) {
         if ($selectedValue == $row['Program_Description']) {   $strSelect = ' selected '; } else { $strSelect =  ''; }
        $dropdown .= "\r\n<option ".$strSelect." value='{$row['Program_Description']}'>{$row['Program_Description']}     </option>";
   }
   $dropdowna .= "\r\n</select>";
share|improve this answer
    
Thankx for this. but how do we fetch the data in $selectedValue for suppose? –  Bushra Khan Sep 18 '13 at 21:17

Try this,

    $sql = "SELECT Program_Description FROM programs";
$result = mysqli_query($dbc, $sql);
$savedValueInDb = ""; //fetch the DB saved value and assign to this variable
$dropdown = "<select name='Program_Description'>";
$dropdown .= "<option value= ></option>";
while($row = mysqli_fetch_assoc($result)) {
$dropdown .= "\r\n<option value='{$row['Program_Description']}'";
$dropdown .= ($savedValueInDb == $row ['Program_Description']) ? " selected " : "";
$dropdown .= ">{$row ['Program_Description']}     </option>";
}
$dropdowna .= "\r\n</select>";
share|improve this answer
    
still i am not able to do this –  Bushra Khan Sep 18 '13 at 21:03

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