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Here is the code:

<select name="op1" id="op1" class="op1">
    <option value=""> -- please choose -- </option>
    <?php
        while($row = mysql_fetch_array($query)){
            $id = $row['id'];
            $name = $row['name'];
            echo '<option value="'.$id.'">'.$name.'</option>';
        }
    ?>
</select>
<br />
<select name="op2" id="op2" style="margin-top:20px" class="op2">
    <option value=""> -- please choose -- </option>
    <?php
        $query2 = mysql_query("SELECT * FROM cat2 WHERE cor = '$id' ORDER BY id ASC");
        while($row2 = mysql_fetch_array($query2)){
            $id2 = $row2['id'];
            $name2 = $row2['name'];
            echo '<option value="'.$id2.'">'.$name2.'</option>';
        }
    ?>
</select>

What I want to do is select $id from the first loop and use it in the second loops query but cant seem to get it to work because of the variable pipeline, does anyone know a work around for this?

share|improve this question
    
That requires submitting the form, right? –  Explosion Pills Mar 31 '13 at 4:17
    
Do you mean use the user's chosen value from the first SELECT when populating values in the second SELECT? –  JoLoCo Mar 31 '13 at 4:18
2  
Which $id from the first loop do you want to use in the second query? PHP runs on the server BEFORE sending the page to the browser, so it can't depend on what the user selects. For that, you need to use AJAX. –  Barmar Mar 31 '13 at 4:33
    
@Barmar That's what I was wondering too! Looking at the OP's comment on Alqin's answer below, that's exactly what they were trying to do. –  JoLoCo Mar 31 '13 at 4:40
2  
An alternative to AJAX is to populate the second <select> with hidden groups of <option> tags, and use Javascript to show the ones appropriate for the one chosen in the first <select>. –  Barmar Mar 31 '13 at 4:44

2 Answers 2

up vote 0 down vote accepted
<?php
 $ids=array();
    while($row = mysql_fetch_array($query)){
            $id = $row['id'];
        $ids[]=$id;
        $name = $row['name'];
        echo '<option value="'.$id.'">'.$name.'</option>';
    }
?>

second php block;

<?php
foreach ($ids as $id) {
    $query2 = mysql_query("SELECT * FROM cat2 WHERE cor = '$id' ORDER BY id ASC");
    while($row2 = mysql_fetch_array($query2)){
        $id2 = $row2['id'];
        $name2 = $row2['name'];
        echo '<option value="'.$id2.'">'.$name2.'</option>';
    }
}
?>

The next line of codes are using ajax. You have to create a new file called ajax.php. You can use the same file, put all the code from ajax.php (adding the exit; at the end) at the very top of the document and change ...load('ajax.php'... with ...load(''...

If you place the script in the head of the doc you will have to wrap it in $(function(){}); to run after all the element in the page are loaded.

Not tested code. But here we go. If I'm wrong somewhere, please anyone comment.

AJAX

    <select name="op1" id="op1" class="op1">
        <option value=""> -- please choose -- </option>
        <?php
            while($row = mysql_fetch_array($query)){
                $id = $row['id'];
                $name = $row['name'];
                echo '<option value="'.$id.'">'.$name.'</option>';
            }
        ?>
    </select>
    <br />
    <select name="op2" id="op2" style="margin-top:20px;" class="op2">

    </select>

 <script type="text/javascript">
      $('#op1').change(function() {
          $('#op2').load('ajax.php',{id:$(this).val()});
     });

 </script>

ajax.php file:

   <?php if (isset($_REQUEST['id'])) {  $id = $_REQUEST['id']; ?>
      <option value=""> -- please choose -- </option>
        <?php
            $query2 = mysql_query("SELECT * FROM cat2 WHERE cor = '$id' ORDER BY id ASC");
            while($row2 = mysql_fetch_array($query2)){
                $id2 = $row2['id'];
                $name2 = $row2['name'];
                echo '<option value="'.$id2.'">'.$name2.'</option>';
            }
        } ?>
share|improve this answer
    
That just makes id the value of 1 no matter what the user selects –  mtcamesao Mar 31 '13 at 4:37
1  
@mtcamesao If you're trying to populate the second SELECT with what the user has selected from the first one, you can't do it like this, as the whole HTML (including the PHP-generated HTML) is output at once. You'll need to submit the user's SELECT choice either via AJAX or using a FORM submit, before generating the second SELECT. –  JoLoCo Mar 31 '13 at 4:39
    
Can you possible give me an example code? –  mtcamesao Mar 31 '13 at 5:09
    
I edited my answer, I'll come back letter with an ajax example. –  Alqin Mar 31 '13 at 14:19
    
Add it ajax example. Not tested, but should point in the right direction. –  Alqin Mar 31 '13 at 14:44

When the user picks the first option in the First select box i want it to slide down the second box (Already have that working) But i need help getting the data from the mysql database into that second select box based on the users first choice.

For what you want you'll need to:

  • Gather the selected first option by jQuery (client side)
  • Perform an AJAX request via jQuery.ajax() or synonyms (client side)
  • Define the landing page for the AJAX request to gather the informations (server side)
  • Update the second option set (client side)
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