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I am trying to auto populate a dropdown menu with data from mysl db. The dropdown should display type inactive and active for user to pick. Below I have the table structure and the sql query from the php side. The dropdown is not displaying any values at all.

CREATE TABLE academy
(
  academy_id int(11) not null auto_increment,
  name varchar(25) not null,
  type enum('INACTIVE','ACTIVE') DEFAULT 'ACTIVE' NOT NULL,
  primary key (id),
 );

php

Type: <select name="select_type">
<?php
        $mysqli = new mysqli(DB_SERVER, DB_USERNAME, DB_PASSWORD, DB_DATABASE);

        if (mysqli_connect_errno()) {
            printf("Connect failed: %s\n", mysqli_connect_error());
            exit();
        } 

        $dropDownQuery = "SELECT type FROM academy";

        if ($result = $mysqli->query($dropDownQuery)) {
            while ($row = $result->fetch_row()) {
                $type = $row['type'];
                echo "<option value=\"$type\">$type</option>";
            }
        }
    ?>
</select>
share|improve this question
    
r u getting any javascript error?? –  Aman Varshney Nov 9 '13 at 5:48
    
whats happening, Is there any error –  Sunil Kumar Nov 9 '13 at 5:48
    
what's with the variable $type when you're using $partner –  Drixson Oseña Nov 9 '13 at 5:50
    
@AmanVarshney Not using javascript. only php –  user2970730 Nov 9 '13 at 5:56
    
@SunilKumar no error displaying, nothing displays in the dropdown –  user2970730 Nov 9 '13 at 5:56

3 Answers 3

$type is not defined in your code.

Replace $partner with $type

 $type = $row['type'];

 echo "<option value=\"$type\">$type</option>";
share|improve this answer
    
I tried to echo $partner and did not get a result –  user2970730 Nov 9 '13 at 6:07
    
is the issue here type enum('INACTIVE','ACTIVE') DEFAULT 'ACTIVE' NOT NULL, ? –  user2970730 Nov 9 '13 at 6:11
    
use this to track error mysqli_error()` –  Sunil Kumar Nov 9 '13 at 6:13
    
@user2970730 add echo mysqli_num_rows($result); before while and tell whats it giving –  Sunil Kumar Nov 9 '13 at 6:15
    
Nothing is being echo –  user2970730 Nov 9 '13 at 6:21
   $dropDownQuery = "SELECT `type` FROM academy";
        if ($result = $mysqli->query($dropDownQuery)) {
            while ($row = $result->fetch_row()) {
                $partner = $row['type'];
                printf ('<option value="%s">%s</option>', $partner, $partner);
            }
        }
share|improve this answer
    $mysqli = new mysqli(DB_SERVER, DB_USERNAME, DB_PASSWORD, DB_DATABASE);


   if (mysqli_connect_errno()) {
        printf("Connect failed: %s\n", mysqli_connect_error());
        exit();
    } 

    $table_name = "academy";
    $column_name = "type";

    echo "<select name=\"$column_name\"><option>Select one</option>";
    $q = "SELECT COLUMN_TYPE FROM INFORMATION_SCHEMA.COLUMNS
        WHERE TABLE_NAME = '$table_name' AND COLUMN_NAME = '$column_name'";
    $r = mysqli_query($mysqli, $q);

    $row = mysqli_fetch_array($r);
    //print_r($row);
    $enumList = explode(",", str_replace("'", "", substr($row['COLUMN_TYPE'], 5, (strlen($row['COLUMN_TYPE'])-6))));
    //print_r($enumList);
    foreach($enumList as $value){
        echo "<option value='$value'>$value</option>";
    }
    echo "</select></br>";
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