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Okay so I have a table called Countries and it looks like this:

---------------------------
|Country      |    Code   |
---------------------------
|Afganastan   |     AF    |
|ÅLAND ISLANDS|     AX    |
|  etc.       |     etc.  |
---------------------------

The thing that I want to do is create a dynamic menu in which the user chooses a country and that itself gets stored as a value that I can call after the user hits submit.

I did try something here but I'm not sure what its doing because I am still new to PHP and HTML to the point where I just type things in to see what would happen.

Anyways I am really stuck and I tried using google and the search feature in this site and nothing I found worked for me...

The code I tried is this:

<select>
    <?php
        $result = mysql_query('SELECT Country FROM Countries');

        echo '<select name="country">';

        while ($row = mysql_fetch_array($result))
        {
           echo '<option value="'.$row['id'].'">'.$row['name'].'</option>';
        }

        echo '</select>';
    ?>

   </select>

The result is supposed to look like a dropdown menu with the list of countries from the database in it. But this doesn't work and just shows this in the drop down:

.$row['name']

Which is nothing close to what I want because that's not even a country. when I remove that part of the code, then there is no option for the user to choose, the menu is empty.

EDIT My code so far that still doesn't work:

<select name = 'country'>
    <?php

    include ("account.php");
    include ("connect.php");

        $result = mysql_query('SELECT Code , Country FROM Countries');
        while ($row = mysql_fetch_array($result))
            {?>

            <option value="<?php echo $row['Code']?>"><?php echo $row['Country']?></option>

            <?php}

    ?>

   </select>

The include ("account.php"); and include ("connect.php"); lines allow me to connect to my database.

share|improve this question
2  
var_dump($result)? And also, why do you have two <select>? –  deex Apr 26 '12 at 5:53
    
Did you make sure there is any record in the table. Code is perfect and it mustn't produce any error –  raheel shan Apr 26 '12 at 7:25
    
My database has 200+ different countries and their Code in the Countries table. I imported them myself from a text file. –  shade917 Apr 26 '12 at 7:34

9 Answers 9

you code should be something like this

$host = "localhost";
$user = "root";
$pass = "yourpassword";
$db   = "databasename";

// This part sets up the connection to the 
// database (so you don't need to reopen the connection
// again on the same page).
$ms = @mysql_connect($host, $user, $pass);
if ( !$ms )
{
echo "Error connecting to database.\n";
}

// Then you need to make sure the database you want
// is selected.
@mysql_select_db($db);


<form method = "POST" action = "abc.php">
<select name = 'country'>
<?php
$result = mysql_query('SELECT id , name FROM Countries');
while ($row = mysql_fetch_array($result))
    {?>
       <option value="<?php echo $row['id']?>"><?php echo $row['name']?></option>
    <?php}
?>
<input type = "submit" value = "Submit">
</form>

Now in php use this

echo '<pre>';
print_r($_POST);

And you will see what user selected. Check your settings there might be some problem.

share|improve this answer
    
the thing is that my dropdown menu has nothing in it for the user to choose. How do i throw in stuff from the database for the user to pick from? –  shade917 Apr 26 '12 at 6:04
    
See my edits and change in the query –  raheel shan Apr 26 '12 at 6:19
    
yea I did that but nothing changed. I still get an empty drop down menu. –  shade917 Apr 26 '12 at 6:29
    
SELECT Code , Country from Countries; And in loop $row['Code'] and $row['Country']. These are necessary –  raheel shan Apr 26 '12 at 6:39
    
Please take a look at me edit to see what I have so far. –  shade917 Apr 26 '12 at 6:47

Your single and double quotes are messing you up:

echo '<option value="'.$row['id'].'">'.$row['name'].'</option>';

should be:

echo "<option value=\"" . $row['id'] . "\">" . $row['name'] . "</option>";

You can use a single quote around your script but when you jump out of it to do the $row['id'] and $row['name'] you are running into issues because it thinks you are jumping back into your quoted code... Either use my example above, starting/ending with double-quotes and escaping all double-quotes inside that need to display, or escape your single quotes in the $row[\'id\'] and $row[\'name\']

Thant should help you out.

share|improve this answer
    
And if your table looks exactly like above, then there is no id or name fields that you are trying to call, only Country and Code –  JT Smith Apr 26 '12 at 6:15
    
this didn't change anything for me... –  shade917 Apr 26 '12 at 6:34

Try this code

 <?php
        $result = mysql_query('SELECT * FROM Countries');
?>
<select name="country">
<?php 

        while ($row = mysql_fetch_array($result))
        {
?>
<option value="<?php echo $row['id']; ?>"><?php echo $row['name']; ?></option>
<?php
        }
?>
</select>
share|improve this answer

Firstly your table doesn't have a column id. Try changing your query like

SELECT Country, Code FROM Countries

Then the code and the html should be like this

<?php

$host = "localhost";
$user = "user";  //username
$pass = "pass";  //password
$db   = "db";    //database

$con = @mysql_connect($host, $user, $pass);
if ( !$con )
{
echo "Error connecting to database.\n";
}

@mysql_select_db($db);
?>

<select name="country">
<option value="0" selected="selected">Choose..</option>
<?php
//echo '<select name = \'country\'>';

    $result = mysql_query('SELECT Country, Code FROM Countries');

    while ($row = mysql_fetch_array($result))
    {
       echo '<option value="'.$row['Code'].'">'.$row['Country'].'</option>';
    }

?>
</select>
share|improve this answer
    
still the menu is empty... –  shade917 Apr 26 '12 at 6:29
    
sorry, it still didn't work. Please take a look at my edit to see what I have so far based on everyone's answers. –  shade917 Apr 26 '12 at 6:57
    
Whats the error on my code can you write it? I mean is there an error or nothing ? –  pikk Apr 26 '12 at 7:12
    
I don't see an error in your code, I just don't see my drop down menu having anything in it. –  shade917 Apr 26 '12 at 7:14
    
If you tahe an error like Parse error: syntax error, then you should change this one <?php} to this <?php } Need some space –  pikk Apr 26 '12 at 7:41
  <select>
    <?php
    $result = mysql_query('SELECT Country FROM Countries');

    echo '<select name="country">';
    $row = mysql_fetch_array($result)
    for ($i=0; $i<count($row ); $i++)
    {
       echo '<option value="'.$row[$i]['id'].'">'.$row[$i]['name'].'</option>';
    }

    echo '</select>';
?>

next page use print_r($_POST); or var_dump($_REQUEST);

share|improve this answer

If you are using mysql_fetch_array you can use either the field names or their selected index to read them from the fetched row. You can also use either the sprintf or printf functions to merge content into a string to help keep the HTML fragment clean of the quotes needed to merge in values otherwise.

$result = mysql_query('SELECT Country, Code FROM Countries');
while ($row = mysql_fetch_array($result)) {
   printf('<option value="%1$s">%2$s</option>',
            $row['Code'], $row['Country']);
}
share|improve this answer

Your SQL statement selected only 'Country' from the 'Countries' table; as a result, it's impossible for you to use $row['id'] and $row['name'].
Use this instead:

    echo '<select name="country">';

    while ($row = mysql_fetch_array($result))
    {
       echo '<option value="'.$row['Code'].'">'.$row['Country'].'</option>';
    }

    echo '</select>';
?>

That should solve your problem.

share|improve this answer
    
I wish it did but unfortunately It made no difference... –  shade917 Apr 26 '12 at 14:25
    
What is it giving you? That should work. Right inside the while loop, put var_dump($result); what did it give you? –  Kneel-Before-ZOD Apr 26 '12 at 16:12
    
[IMG]i46.tinypic.com/8xnfp4.png[/IMG] –  shade917 Apr 26 '12 at 16:23
    
Ok; first, you shouldn't wrap 2 select statements inside each other; remove the outer select statement, run the code I gave you earlier (the 'var_dump' one), and let me know what it gives you again –  Kneel-Before-ZOD Apr 26 '12 at 16:29
    
[link]i46.tinypic.com/2ewkvww.png –  shade917 Apr 26 '12 at 16:38

I figured out the problem I was having. The first being that there was an extra select tag in the page and the second that the file was saved as a html page instead of a php file. Thank you to everyone that helped me figure this out!

share|improve this answer

Try my code, I'm using this and it really works... just change the values...

<?php
    include ('connect.php');

    $sql = "SELECT * FROM casestatusfile";
    $result = mysql_query($sql);

    echo "<select name = 'txtCaseStatus'/>";
    echo "<option value = ''>--- Select ---</option>";
    $casestatus = $_POST['txtCaseStatus'];
    $selected = 'selected = "selected" ';
    while ($row = mysql_fetch_array($result)) {
    echo "<option " .($row['CASESTATUSCODE'] == $casestatus? $selected:''). "value='". $row['CASESTATUSCODE'] ."'>" . $row['CASESTATUS'] ."</option>";
    }
    echo "</select>";
    ?>

I'm sure that is working because that is the one that i'm using....

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