Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I'm having a (probably super simple) issue. The code below is supposed to _POST (using AJAX) a variable called 'id' to an external file called getYourData.php.

I think the issue is below. The 'data' section doen't seem to be functioning - I've even tried putting [data: '2'] to simply put '2' in the SELECT statement. But that doesn't even work.

$.ajax({
        type: 'POST',
        url: 'getYourData.php',
        data: 'id',
        success: function(msg){
            //everything echoed in your PHP-File will be in the 'msg' variable:
            $('#selectTwo').html(msg)
            $('#selectTwo').fadeIn(500);
        }
});

Here's the rest of code (snippet - jquery has been imported)

<!-- First Box: click on link shows up second box -->
<div id="selectOne" style="float: left; margin-right: 10px; border: #666 thin solid; padding: 10px;">
  <a href="#" id="1">One</a><br />
  <a href="#" id="2">Two</a><br />
  <a href="#" id="3">Three</a>
</div>

<!-- Second Box: initially hidden with CSS "display: none;" -->
<div id="selectTwo" style="float: left; margin-right: 10px; display: none; border: #666 thin solid; padding: 10px;"></div>

<!-- The JavaScript (jQuery) -->
<script type="text/javascript">

//Do something when the DOM is ready:
$(document).ready(function() {

//When a link in div with id "selectOne" is clicked, do something:
$('#selectOne a').click(function() {
    //Fade in second box:
    $('#selectTwo').fadeIn(500);

    //Get id from clicked link:
    var id = $(this).attr('id');

    $.ajax({
        type: 'POST',
        url: 'getYourData.php',
        data: '2',
        success: function(msg){
            //everything echoed in your PHP-File will be in the 'msg' variable:
            $('#selectTwo').html(msg)
            $('#selectTwo').fadeIn(500);
        }
});

    //Depending on the id of the link, do something:
    if (id == 'one') {
        //Insert html into the second box which was faded in before:
        $('#selectTwo').html('One<br />is<br />selected')
    } else if (id == 'two') {
        $('#selectTwo').html('Two<br />is<br />selected')
    } else if (id == 'three') {
        $('#selectTwo').html('Three<br />is<br />selected')
    }

    });


});
</script>

getYourData.php - creates a custom SELECT statement based on the 'id' passed from primary page. For some reason, this isn't working. Only works when I intentionally set a dud variable ($id2)

<?php


$username="primary";
$password="testpass";
$database="testdb";

mysql_connect(localhost,$username,$password) or die ('Unable to connect...');

mysql_select_db($database) or die('Error: '.mysql_error ());

//Intentionally creating a dud variable will create a good SELECT statement and work
$id2 = "3";

$id = $_POST['id'];
$query = mysql_query('SELECT * FROM members WHERE member_id='.$id);
$result = mysql_fetch_assoc($query);

//Now echo the results - they will be in the callback variable:
echo $result['firstname'].', '.$result['lastname'];

mysql_close();
?>
share|improve this question
1  
data in your AJAX function needs to be of the form 'id=xxx'. Is that a typo? – Andrew Lee Aug 11 '11 at 0:57
    
@Andrew: but it's a variable... it changes depending on what id (link) the user clicks. What would xxx be? – Zakman411 Aug 11 '11 at 1:00
    
@Zakman441: I see you have it in the variable id. Try 'id=' + id. Confusing I know lol – Andrew Lee Aug 11 '11 at 1:06
    
@Andrew: Can you post that as an answer? That worked perfectly. Doesn't make any sense to me why you have to do that though lol. Thank you! Please post an answer so I can select it? – Zakman411 Aug 11 '11 at 1:08
    
@Zakman441: sure thing – Andrew Lee Aug 11 '11 at 1:10
up vote 0 down vote accepted

data in your AJAX function needs to be of the form 'id=xxx'. I see you have it in the variable id. Try data: 'id=' + id. Confusing I know.

The explanation here is that POST data should be of the form a=b,c=d,... et cetera. That way PHP will pick it up as a key/value pair in the $_POST dictionary. Now you have a variable id which you would like to send (value), and you also want this to be the name of the (key). Hence you would need to do data: 'id=' + id. If id=2, then that will evaluate to data: 'id=2', which is correct.

Ultimately, as @Stephen noted, it is better to use an Object for the data field, as it is arguably more elegant. data: {'id': id} should work as well, and you can add more variables in the future.

share|improve this answer
    
But if he needs to add more data in the future, he'll continually have this messy string to work with.. You're much better off using an object.. – Stephen Aug 11 '11 at 1:23
    
I completely agree with you @Stephen, I've edited my answer to reflect that. – Andrew Lee Aug 11 '11 at 1:25

Have you tried data: {id: 2 } - object, not an array.

share|improve this answer
    
That actually worked! BUT, I need the id variable to be transmitted, not the '2'. Is there a way to just do data: {id}? That throws an error for me.. – Zakman411 Aug 11 '11 at 1:03
    
data: { 'id': $(this).attr('id') } – Stephen Aug 11 '11 at 1:06
    
Also, you've already put it in a variable called id.. so the syntax is alittle strange looking but data: {'id': id } – Stephen Aug 11 '11 at 1:07
    
'id=' + id ended up working...weird haha. Thanks for the reply though! – Zakman411 Aug 11 '11 at 1:08
    
You can do that but its less than ideal.. Note - when you make an object and use 'id' - you need to put 'id' in qutotes because its a reserved word in javascript. – Stephen Aug 11 '11 at 1:09

I believe the data in your ajax call is wrong. The php references $_POST['id'] in your call but the var ID is not sent.

from : http://api.jquery.com/jQuery.ajax/

dataObject, String

Data to be sent to the server. It is converted to a query string, if not already a string. It's appended to the url for GET-requests. See processData option to prevent this automatic processing. Object must be Key/Value pairs. If value is an Array, jQuery serializes multiple values with same key based on the value of the traditional setting (described below).

Should be more like this:

data: "id=2",

share|improve this answer
    
That works, but only returns member_id of 2. How can I send the 'id' variable that changes based on user input? – Zakman411 Aug 11 '11 at 1:04

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.