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i'm still fresh in using AJAX and i'm having hard time with it.can you please help me with this? i actually have a dropdown and when i select an item in that dropdown a table of queries should print to the tbody.here's my code:

the PHP code:

<select id="proj_id" name="proj_id" onchange="myFunction(this.value)">

    <option value="none">---select project---</option>
    <?php
    //Projects
    $r = @mysql_query("SELECT `proj_id`, `proj_name` FROM `projects`");

    while($rows = mysql_fetch_assoc($r)) {
        $proj_id = $rows['proj_id'];
        $proj_name = $rows['proj_name'];
        echo '<option value='.$proj_id.'>'.$proj_name.'</option>';
    }
    ?>
</select>

<table>

<thead>
    <tr>
        <th>Project Name</th>
        <th>Material Name</th>
        <th>Quantity</th>
        <th>Status</th>
    </tr>
</thead>
<tbody id="project_estmat">
<?php
    //Display Requests
    $r = @mysql_query("SELECT `proj_name`, `mat_name`, `req_qty`, `stat_desc` FROM `requests` JOIN `projects` USING(`proj_id`) JOIN `materials` USING(`mat_id`) JOIN `status` ON(requests.stat_id = status.stat_id)");

        while ($row = mysql_fetch_array($r)) {
            echo '<tr>';
            echo '<td>'.$row['proj_name'].'</td>';
            echo '<td>'.$row['mat_name'].'</td>';
            echo '<td>'.$row['req_qty'].'</td>';
            echo '<td>'.$row['stat_desc'].'</td>';
            echo '</tr>';
        }
?>
</tbody>
</table>

jS CODE:

function myFunction(value){

if(value!="none")
{
    $.ajax(
    {
        type: "POST",
        url: 'content/admin/requests.php',
        data: { proj_id: value},
        success: function(data) {
    $('#project_estmat').html(data);

    }
});
}
else
{
    $('#project_estmat').html("select an item");
}

}

and I have this PHP code that should be in the #project_estmat which is a table. And I think this is where the problem lies. Because everytime I select an item, nothing is printing in the table. It shows empty data.

<?php
if (isset($_POST['proj_id'])) {

    $r = @mysql_query("SELECT `proj_name`, `mat_name`, `req_qty`, `stat_desc` FROM `requests` JOIN `projects` USING(`proj_id`) JOIN `materials` USING(`mat_id`) JOIN `status` ON(requests.stat_id = status.stat_id)");
    if($r){
        while ($row = mysql_fetch_array($r)) {
            echo '<tr>';
            echo '<td>'.$row['proj_name'].'</td>'; 
            echo '<td>'.$row['mat_name'].'</td>';
            echo '<td>'.$row['req_qty'].'</td>';
            echo '<td>'.$row['stat_desc'].'</td>';
            echo '</tr>';
        }
    }
exit;
}
?>
share|improve this question

5 Answers 5

you have wrapped $.ajax function with, ${ it should be like the following, and try using change, and remove the inline function calling when you do this,

$('#proj_id').change(function() {
var value = $(this).val();
    if(value!="none"){
        $.ajax({
            type: "POST",
            url: 'content/admin/requests.php',
            data: { proj_id: value},
            success: function(data) {
                $('#project_estmat').html(data);
                alert(data);//check whats coming from the server side 
            }
        });
    }
});

tested out with a simplified php code to the server end such as the following,

<?php 
if (isset($_POST['proj_id'])) {
            echo '<tr>';
            echo '<td>A</td>'; 
            echo '<td>B</td>';
            echo '<td>C</td>';
            echo '<td>D</td>';
            echo '</tr>';

}
?>
share|improve this answer
    
my fault.but still doesn't work. –  chris Jan 2 '13 at 10:56
    
whats coming from the server side into the ajax success function? you can check this via the way i have shown with an alert() –  Swarne27 Jan 2 '13 at 11:00
    
you're missing a { after the if syntax –  w0rldart Jan 2 '13 at 11:05
    
nothing.when i select an item from the dropbox it returns empty data. –  chris Jan 2 '13 at 11:06
    
thx for mentioning @w0rldart i've corrected the mistake –  Swarne27 Jan 2 '13 at 11:08

everything looks fine except you have a '$' extra in your if condition

if(value!="none")
${  //here

removing the '$' sign should work...

share|improve this answer
    
sorry for that.i've already edited that.but still doesn't work.. –  chris Jan 2 '13 at 11:02
    
alert(value) in your function myFunction and check if you are getting the right value or not.. –  bipen Jan 2 '13 at 11:12
    
nothing.its all blank. –  chris Jan 2 '13 at 11:17
    
so there is the problem... check your onchange function since it is not returning any values... –  bipen Jan 2 '13 at 11:25
    
but then if i change the last code with a simple table.it returns the table.i think it's not in the function? –  chris Jan 2 '13 at 11:28

You shouldn't use the function mysql_query since its deprecated as of PHP 5.5.0 and will be removed (http://php.net/manual/en/function.mysql-query.php). You better use the PHP PDO class (http://php.net/manual/en/book.pdo.php).

share|improve this answer

Dont suppress your error using '@' error_compression operator. Remove the @ symbol from mysql_query and try debugging your code.

share|improve this answer
    
there's no difference.it's still the same. –  chris Jan 3 '13 at 11:53

Try building a string and sending it back.

$str = '';
if($r){
    while ($row = mysql_fetch_array($r)) {
        $str .= '<tr>';
        $str .= '<td>'.$row['proj_name'].'</td>'; 
        $str .= '<td>'.$row['mat_name'].'</td>';
        $str .= '<td>'.$row['req_qty'].'</td>';
        $str .= '<td>'.$row['stat_desc'].'</td>';
        $str .= '</tr>';
    }
    return $str;
}

Then when the loop is done we can send the string back. While the dataType property .ajax() uses intelligent parsing to decide what type of data is being sent back and how to construct the returned object, you should just declare it.

$.ajax({
    type: "POST",
    url: 'content/admin/requests.php',
    data: { proj_id: value},
    dataType:'html',
    success: function(data) {
        $('#project_estmat').html(data);
    }
});
share|improve this answer
    
it still returns an empty table. –  chris Jan 2 '13 at 10:59

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