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I have a table ("venues") that stores all the possible venues a volunteer can work, each volunteer is assigned to work one venue each.

I want to create a select drop down from the venues table.

Right now I can display the venue each volunteer is assigned, but I want it to display the drop down box, with the venue already selected in the list.

<form action="upd.php?id=7">
<select name="venue_id">
<?php //some sort of loop goes here
print '<option value="'.$row['venue_id'].'">'.$row['venue_name'].'</option>';
//end loop here ?>
</select>
<input type="submit" value="submit" name="submit">
</form>

For example, volunteer with the id of 7, is assigned to venue_id 4

<form action="upd.php?id=7">
<select name="venue_id">
    <option value="1">Bagpipe Competition</option>
    <option value="2">Band Assistance</option>
    <option value="3">Beer/Wine Pouring</option>
    <option value="4" selected>Brochure Distribution</option>
    <option value="5">Childrens Area</option>
    <option value="6">Cleanup</option>
    <option value="7">Cultural Center Display</option>
    <option value="8">Festival Merch</option>
</select>
<input type="submit" value="submit" name="submit">
</form>

Brochure Distribution option will already be selected when it displays the drop down list, because in the volunteers_2009 table, column venue_id is 4.

I know it will take a form of a for or while loop to pull the list of venues from the venues table

My query is:

$query = "SELECT volunteers_2009.id, volunteers_2009.comments, volunteers_2009.choice1, volunteers_2009.choice2, volunteers_2009.choice3, volunteers_2009.lname, volunteers_2009.fname, volunteers_2009.venue_id, venues.venue_name FROM volunteers_2009 AS volunteers_2009 LEFT OUTER JOIN venues ON (volunteers_2009.venue_id = venues.id) ORDER by $order $sort";

How do I populate the select drop down box with the venues (volunteers_2009.venue_id, venues.id) from the venues table and have it pre-select the venue in the list?

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3 Answers 3

up vote 7 down vote accepted
$query = "SELECT volunteers_2009.id, volunteers_2009.comments, volunteers_2009.choice1, volunteers_2009.choice2, volunteers_2009.choice3, volunteers_2009.lname, volunteers_2009.fname, volunteers_2009.venue_id, venues.venue_name FROM volunteers_2009 AS volunteers_2009 LEFT OUTER JOIN venues ON (volunteers_2009.venue_id = venues.id) ORDER by $order $sort";

$res = mysql_query($query);
echo "<select name = 'venue'>";
while (($row = mysql_fetch_row($res)) != null)
{
    echo "<option value = '{$row['venue_id']}'";
    if ($selected_venue_id == $row['venue_id'])
        echo "selected = 'selected'";
    echo ">{$row['venue_name']}</option>";
}
echo "</select>";

:)

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assuming you have an array of venues...personally i don't like to mix the sql with other wizardry.

function displayDropDown($items, $name, $label, $default='') {
  if (count($items)) {
    echo '<select name="' . $name . '">';
    echo '<option value="">' . $label . '</option>';
    echo '<option value="">----------</option>';
    foreach($items as $item) {
      $selected = ($item['id'] == $default) ? ' selected="selected" : '';
      echo <option value="' . $item['id'] . '"' . $selected . '>' . $item['name'] . '</option>';
    }
    echo '</select>';
  } else {
    echo 'There are no venues';
  }
}
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I have a table (venues) that store all the venues (id, venue_name) The venues.id is stored in the volunteers_2009 table (volunteers_2009.venue_id) –  Brad Oct 14 '08 at 2:02
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        <?php 
        $query = "SELECT * from blogcategory";
        //$res = mysql_query($query);
        $rows = $db->query($query);
        echo "<select name = 'venue'>";
        // while (($row = mysql_fetch_row($res)) != null)
        while ($record = $db->fetch_array($rows)) 
        {
            echo "<option value = '{$record['CategoryId']}'";
            if ($CategoryId == $record['CategoryId'])
                echo "selected = 'selected'";
            echo ">{$record['CategoryName']}</option>";
        }
        echo "</select>";
        ?>
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