Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am obtaining data from an api via xml which contains data about each user of a website. I need to ultimately save this data into a mysql database. I am parsing the data and obtaining the values for each user using jquery.

I am find the nodes for each user like so

$onlineid = $(this).find("onlineid");
$comment = $(this).find("comment");

and then obtaining the values..

var onlineid = $onlineid.text();
var comment = $comment.text();

This is where i am now stuck...

I need to create an associated array of users data and then add each users data to an array of users so that it can all be processed using php, then saved to mysql.

maybe something like this..?

var users =  new Array();
var user_data =  new Object();
user_data['onlineid'] = onlineid;
user_data['comment'] = comment;

then..

users.push(user_data);

This seems to build an array of objects. If i post them to a php script like so using ajax

$.ajax({
type: "POST",
url: "sync.php",
data: 'users='+users

firebug shows them as a string of object separated by commas.

How on earth do i deal with that in the php script?

I basically need to process each object (user_data) in each of the array items (users) so that the values can be saved to a mysql database.

Any expert advice would be fantastic.

share|improve this question
    
“Any expert advice would be fantastic.” What’s that? Do I need some kind of certificate or promotion to answer? :P –  Kissaki Feb 19 '11 at 16:22
    
I don’t really get your problem anyway … Are you having problems on the JS side? On the PHP side? Do you already pass data from JS to PHP? –  Kissaki Feb 19 '11 at 16:26

5 Answers 5

up vote 0 down vote accepted

Checkout this gist. It expands on the answer by @picus.

share|improve this answer
    
Thanks for this. Does your example still assume that i pass to the encode_users function the array of users as in my question? –  Aparistar Feb 19 '11 at 19:36
    
@Aparistar yes it does assume that the users array in question will be passed to encode_users –  samshull Feb 19 '11 at 21:31

you break the "a string of object separated by commas" into pieces in PHP using explode:

$users_array = explode(",",$users);
share|improve this answer
    
This is prob a better answer than mine :) –  picus Feb 19 '11 at 16:30

You could try to parse them out into a list of values in the qs that looks like this:

?users[]=user1&users[]=user2&users[]=user3

This should give you an array called users that is part of the POST request for your PHP page:

print_r($_POST['users']);

would output:

user1, user2, user3
share|improve this answer

I don't use PHP, but what I'd do is create a javascript object that is comprised of a single userid field/property and another field/property which holds a simple array of comments for that user (this permits multiple comments per user). Then I'd create a container to hold all of those objects, either a simple (numeric offset) array or an associative array using the userid (as a string) as the key. Then I'd JSONify the whole kit-and-caboodle and post the JSON-encoded string to the server where it would get decoded from JSON format back into objects the server could work with. PHP surely offers some helper methods to make this easy. I'd search for "PHP JSON".

share|improve this answer

I would transfer the data as a JSON-encoded string:

var users = [];

// in a loop:

users.push({onlineid: $(this).find("onlineid").text(), 
           comment: $(this).find("comment").text()});

// ajax request:

$.ajax({ 
    type: "POST",
    url: "sync.php",
    data: {users: JSON.stringify(users)} // automatic HTTP encoding

The JSON object is either built in or available via this script.

In PHP use json_decode:

$users = json_decode($_POST['users'], true);
share|improve this answer

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.