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I'm new to programming. Would you kindly assist me in getting data from MySQL to a PHP list/menu?

<tr>
    <td align="right">Owners Name</td>
    <td>
        <select name="owners" id="owners">

            <?php 

            $owners = mysql_real_escape_string($_POST['owners']);
            $sql = mysql_query("SELECT lld_Lname,lld_Fname FROM landlords "); 

            while ($row = mysql_fetch_array($sql))
            {
            ?> 

            <option <?php echo $_POST['owners']==$row['owners'] ? 'selected' : ''?>><?php echo $row['owners'] ?></option> 


            <?php 
            } 
            ?> 

        </select>
    </td>
</tr>

After running the above code I get this error:

Notice :undefined index:owners in c:\wamp\www\real_estate\admin\add_building.php online 41

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2  
As the values in $row are the column values returned by the database query, and your database query only returns the lld_Lname and lld_Fname columns, why would you expect $row['owners'] to exist? –  Mark Baker Jun 26 '13 at 9:43
    
Just include the owners field in your Select statement –  Nesmar Patubo Jun 26 '13 at 9:47
    
If you're new to programming, be sure to start in the right place. Use PDO or MySQLi to interact with the database, not mysql_* which has long been deprecacted. Whatever tutorial you're following, you should probably drop it. Re question, if you're not posting owners to the page, you will get the same undefined index error. –  MrCode Jun 26 '13 at 9:49
    
Notices are not Errors. They are notices! I suggest you to work with some very basic MySQL / PHP tutorials to get a better feeling for what a SELECT and all this is actually doing –  DanFromGermany Jun 26 '13 at 9:50
    
$sql = mysql_query("SELECT lld_Lname,lld_Fname,owners FROM landlords "); –  Nanhe Kumar Jun 26 '13 at 9:53
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closed as off-topic by Pekka 웃, Ben Carey, andrewsi, Ziyao Wei, legoscia Jun 26 '13 at 17:38

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "Questions must demonstrate a minimal understanding of the problem being solved. Tell us what you've tried to do, why it didn't work, and how it should work. See also: Stack Overflow question checklist" – Pekka 웃, Ben Carey, legoscia
If this question can be reworded to fit the rules in the help center, please edit the question.

2 Answers

up vote 0 down vote accepted
    <?php 
    $owners = mysql_real_escape_string($_POST['owners']);
    $sql = mysql_query("SELECT owners FROM landlords ") or die(mysql_error());
    ?>
    <tr> 
    <td align="right">Owners Name</td> 
    <td><select name="owners" id="owners">

        <?php
        while ($row = mysql_fetch_array($sql)) { ?> 

        <option <?php echo $_POST['owners']==$row['owners'] ? 'selected' : ''?>><?php echo $row['owners'] ?></option> 

        <?php } ?> 

        </select>
    </td>
    </tr>

If owners column is available in your DB table this may work or post the error you are getting

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my DB table landlords has has lld_Id, lld_Lname,lld_Fname columns.Am trying to retrieve the last name and first name for the user to choose from drop down list.Thanks –  mbugus Jun 26 '13 at 9:58
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just print_r your $row and check which all data are fetched. Check [owners] if exist or not (will be no in your case) and then proceed further with comparison

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@MrCode Thanks for the advice i will sure try PDO or Mysqli –  mbugus Jun 26 '13 at 10:08
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