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Hi since 3 hour I am trying to make this work but not getting the result as I want. I want to display user list with online and offline status.

Here is the table

and here what I tried to get status result.

$loggedtime = time() - 300; // 5 minutes

$query = 'SELECT userid, handle FROM ^users WHERE loggedin = '.$loggedtime.' ORDER BY userid ASC';

// below are scripts function qa_ pleses refer this http://www.question2answer.org/functions.php

$result = qa_db_query_sub($query);  
$users = qa_db_read_all_assoc($result); 

$row = mysql_fetch_array($result);

if($row['userid'] > $loggedtime){
    echo $row['handle'].' is online';
} else {
    echo $row['handle'].' is offline';
}

NOT THIS TOO

foreach($users as $user){
    if($user['userid'] > $loggedtime){
        echo $user['handle']. ' is online';
    } else {
        echo $row['handle'].' is offline';
    }
}

None of above code working. I am new to MYSQL and PHP just know basic so please help me to solve this.

EDIT: I have tried now this but not working

foreach($users as $user){
                if($user['loggedin'] > $loggedtime){
                    echo $user['handle']. ' is online';
                } else {
                    echo $row['handle'].' is offline';
                }
            }

EDIT 2

$query = "SELECT
    userid, handle, 
    CASE
        WHEN TIMESTAMPDIFF(SECOND, loggedin, NOW()) < 300
            THEN 'Online'
        ELSE 'Offline'
    END AS 'status'
FROM ^users
ORDER BY userid";

$result = qa_db_query_sub($query); 

while($user = mysql_fetch_array($result)){
    echo $user['handle'] . '<BR/>';
}

NEW APPROACH

Please check this for new approach User online offline status - offline status issue

share|improve this question
1  
Seems kinda whacky and illogical to compare the userid versus the $loggedtime, since they have nothing in common. Fix that and see what happens. – phpisuber01 Nov 2 '12 at 19:12
    
I have edited updated code can you please check and tel me where I am wrong now? – Code Lover Nov 2 '12 at 19:15
up vote 1 down vote accepted

Since you fixed the user id comparison, let's address the next issue..

You're trying to compare a string DATE versus a unix timestamp. Let's make them the same type and compare:

foreach($users as $user)
{
  $user_time = strtotime($user['loggedin']);
  if($user_time > $loggedtime)
  {
    echo $user['handle']. ' is online';
  } else {
    echo $row['handle'].' is offline';
  }
}

Overall not the best way to approach this problem, but it might get this working for you. The database solution above is probably best.

share|improve this answer
    
This is not rendering anything..! – Code Lover Nov 2 '12 at 19:22
    
Tested this code on my local machine here manually typing in your datetimes from above.. It works. – phpisuber01 Nov 2 '12 at 19:22
    
Yeh I can understand but somehow I am not getting it. these query function can cause the issue? result = qa_db_query_sub($query); $users = qa_db_read_all_assoc($result); – Code Lover Nov 2 '12 at 19:24
    
Look at your MySQL query... SELECT userid, handle FROM ^users WHERE loggedin = '.$loggedtime.' ORDER BY userid ASC This logic says in lamen: "Get me users where their login time is EQUAL TO the current time minus 5 minutes. You will never get a result unless you have a record with the accuracy of 1 second... – phpisuber01 Nov 2 '12 at 19:24
    
Take out that WHERE clause and see how it works: SELECT userid, handle FROM ^users ORDER BY userid ASC – phpisuber01 Nov 2 '12 at 19:26

Your structure looks funny to answer the question. Your loggedin field actually looks more like a "the last time they logged in". Just because you know when they logged in doesn't necessarily mean they are "online".

The reason your query isn't working is because you are comparing a UNIX timestamp to a mysql datetime. In addition, you are using = so unless they logged in EXACTLY five minutes ago, this will not work.

At minimum.

SELECT userid, handle FROM ^users WHERE loggedin > '.date('Y-m-d h:i:s', time()-300).'ORDER BY....
share|improve this answer
    
Oh wow.. thanks to notice me.. I 100% agree with you. So now how can I get status? – Code Lover Nov 2 '12 at 19:35
    
This is a much more complicated answer than this post allows, it would require additional fields, session checking, etc.... – jjs9534 Nov 2 '12 at 19:39
    
Do you mean by creating extra tables? – Code Lover Nov 2 '12 at 19:42
    
Not extra tables necessarily, but probably more robust than you current structure. It all depends on the project. – jjs9534 Nov 2 '12 at 19:43
    
Actually I want to display user list where it indicates online and offline status. I am using this open source question2answer.org. You can read some functions here if may helps question2answer.org/functions.php – Code Lover Nov 2 '12 at 19:45

Why not just check on the database side?

SELECT
    userid, handle, 
    CASE
        WHEN TIMESTAMPDIFF(SECOND, loggedin, NOW()) < 300
            THEN 'Online'
        ELSE 'Offline'
    END AS 'status'
FROM ^users
ORDER BY userid

You can use TIMESTAMPDIFF(unit,datetime_expr1,datetime_expr2) to return datetime_expr2 – datetime_expr1, where datetime_expr1 and datetime_expr2 are date or datetime expressions. One expression may be a date and the other a datetime; a date value is treated as a datetime having the time part '00:00:00' where necessary. The unit for the result (an integer) is given by the unit argument. The legal values for unit are the same as those listed in the description of the TIMESTAMPADD() function.

Take a look at the MySQL Date and Time Functions.

Also, I strongly advise using reserved words for table names.

share|improve this answer
    
So if I use this query than do I have to check conditionally in php? or it will done with this query itself? Sorry but this type of code writing very first time – Code Lover Nov 2 '12 at 19:16
    
@pixelngrain See my updated query. If you use this, you do not have to do any checking in PHP. – Kermit Nov 2 '12 at 19:23
    
Okay let me try and get back to you in a moment – Code Lover Nov 2 '12 at 19:26
    
Please check my Edit 2 I am getting all user regardless the status. I am sorry I am really dumbo in this. please dont get frustrate – Code Lover Nov 2 '12 at 19:32
    
@pixelngrain Are you trying to show the status of users from the last 5 minutes? If yes, then what's the criteria that determines whether they are on online or offline? You also need to echo $user[status] . '<BR/>'; – Kermit Nov 2 '12 at 19:36

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