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i program chatroom but cant find way for show online and offline users. i used session for online user . when user login page and not empty session update database and online 1 . now how know user logout from chat or close browser . i know whith session time or catch can do this but i cant write suitablecode. anyone can help me and put complete code here? thanks for answer

for show online:

session_start();
include("config.php");
connect();
$sql="SELECT `username` FROM `user` WHERE `online`=1";
$result=mysql_query($sql) or die (mysql_error());
if(mysql_num_rows($result)>0)
{
for ($i=0;$i<mysql_num_rows($result);$i++)
{
echo ('<b style="color:green;margin-left:10px;margin-top:10px;">'.mysql_result($result,$i,0).'</b><br>');
if($_SESSION['user']!=""
}
share|improve this question
    
Which technique are you using for realtime-communication? Websockets or ajax longpolling or something different? –  Christoph May 15 '12 at 13:14
    
i used ajax for find online user and chat –  behzad n May 15 '12 at 13:23
add comment

2 Answers 2

You can put simple "if" operation to check if there's session time is shortest than realtime.

example.

In database make column last_activity in users.When user sends message make a query to update that column, last activity with time();

And just check if there's last_activity from database shortest than timeout, in this case you can set $timeout variable for timeout. Here's code:

<?php # make while loop from users where online = 1
$last_activity_from_database = $row['last_activity']; 
$timeout                     = time()-600; # 10 minutes
if($last_activity_from_database < $timeout){
    mysql_query("UPDATE users SET online='0'");
}
?>

You should make AJAX call.

share|improve this answer
    
thanks but how i can update last activity? –  behzad n May 15 '12 at 13:55
    
When a user sends a message or create js function that check's every minute, last activity.. –  Haris Muharemović May 15 '12 at 13:57
    
maybe user only see the chatroom and dont send message . how i create js function for this case? –  behzad n May 15 '12 at 14:04
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You can use the php script runs on a schedule that will be update status to offline when user not on site some time.

To do this, you should sometimes send the user state to the server, by ajax, for example, and store it in database.

updated..

js, jquery function for send status to php every 500ms.

function upd_status() {
    $.get('/php.php', function(data) {
        setTimeout(upd_status,500);
    });
}
upd_status();

on php side.

// I do not know where is user id, but it should be in session
$uid = $_SESSION['user']['uid'];
settype($uid, 'int');

$sql = "UPDATE user SET status = 1, timestamp = ". time() ." WHERE id = ". $uid .";

on cron script

$sql = "UPDATE user SET status = 0 WHERE timestamp < ". (time()-60*5); 
share|improve this answer
    
thanks can you example for me? –  behzad n May 15 '12 at 14:05
    
it will work even through mysql_query() without additional checks, but I recommend using PDO –  ShaaD May 15 '12 at 14:31
    
on cron script??? and 500ms for chatroom whith 1000 online user can be presure server? –  behzad n May 15 '12 at 14:34
    
en.wikipedia.org/wiki/Cron You can use any scheduler. >500ms This value may be larger, it's set in depending on the load. Also it's not just 500ms, is 500ms + request time. –  ShaaD May 15 '12 at 14:53
    
PDO not suitable because no suported loop sql select –  behzad n May 15 '12 at 14:57
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