2

I wanted to know a good and efficient way to be able to tell how long ago my users last logged in.

On the users profile I want it for say how long ago their last log in was.

Eg:

User 1 Last login: 2 hours ago

User 2 Last login: 3 minutes ago

User 3 Last login: 2 months ago


I will keep their last login information in a MySQL database but want to know how to do the script.

I just realized that Stackoverflow uses this feature, so that can help you understand what I want.


mysql_query("UPDATE users SET lastactivity = ".time()." WHERE id = ".$userID);

This is how I will update the DB.

closed as not a real question by Tyler Eaves, Your Common Sense, animuson, Ken Redler, Graviton Mar 10 '12 at 0:47

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center. If this question can be reworded to fit the rules in the help center, please edit the question.

  • What have you tried? Stack Overflow should be used for specific questions. You should use google instead. – evasilchenko Mar 8 '12 at 14:49
  • I havnt tried it yet, I just want a quicker way to do it then I would. My script would be too long. – Sami Dz Hamida Mar 8 '12 at 14:50
9

Each page request just update their last activity.

<?php

mysql_query("UPDATE users SET lastactivity = ".time()." WHERE id = ".$userID);

to show when they were last online, just select their lastactivity field from database and show it

<?php
$activity = mysql_result(mysql_query("SELECT lastactivity FROM users WHERE id = ".$userID), 0);
echo "Last activity: ".relativeTime($active);

where relativeTime() is function I've been using:

function relativeTime($time, $short = false){
    $SECOND = 1;
    $MINUTE = 60 * $SECOND;
    $HOUR = 60 * $MINUTE;
    $DAY = 24 * $HOUR;
    $MONTH = 30 * $DAY;
    $before = time() - $time;

    if ($before < 0)
    {
        return "not yet";
    }

    if ($short){
        if ($before < 1 * $MINUTE)
        {
            return ($before <5) ? "just now" : $before . " ago";
        }

        if ($before < 2 * $MINUTE)
        {
            return "1m ago";
        }

        if ($before < 45 * $MINUTE)
        {
            return floor($before / 60) . "m ago";
        }

        if ($before < 90 * $MINUTE)
        {
            return "1h ago";
        }

        if ($before < 24 * $HOUR)
        {

            return floor($before / 60 / 60). "h ago";
        }

        if ($before < 48 * $HOUR)
        {
            return "1d ago";
        }

        if ($before < 30 * $DAY)
        {
            return floor($before / 60 / 60 / 24) . "d ago";
        }


        if ($before < 12 * $MONTH)
        {
            $months = floor($before / 60 / 60 / 24 / 30);
            return $months <= 1 ? "1mo ago" : $months . "mo ago";
        }
        else
        {
            $years = floor  ($before / 60 / 60 / 24 / 30 / 12);
            return $years <= 1 ? "1y ago" : $years."y ago";
        }
    }

    if ($before < 1 * $MINUTE)
    {
        return ($before <= 1) ? "just now" : $before . " seconds ago";
    }

    if ($before < 2 * $MINUTE)
    {
        return "a minute ago";
    }

    if ($before < 45 * $MINUTE)
    {
        return floor($before / 60) . " minutes ago";
    }

    if ($before < 90 * $MINUTE)
    {
        return "an hour ago";
    }

    if ($before < 24 * $HOUR)
    {

        return (floor($before / 60 / 60) == 1 ? 'about an hour' : floor($before / 60 / 60).' hours'). " ago";
    }

    if ($before < 48 * $HOUR)
    {
        return "yesterday";
    }

    if ($before < 30 * $DAY)
    {
        return floor($before / 60 / 60 / 24) . " days ago";
    }

    if ($before < 12 * $MONTH)
    {

        $months = floor($before / 60 / 60 / 24 / 30);
        return $months <= 1 ? "one month ago" : $months . " months ago";
    }
    else
    {
        $years = floor  ($before / 60 / 60 / 24 / 30 / 12);
        return $years <= 1 ? "one year ago" : $years." years ago";
    }

    return "$time";
}
  • I know that but I want to tell me how long ago they were seen. – Sami Dz Hamida Mar 8 '12 at 14:49
  • The answer is just as short as easy! But you forgot the PHP closing tag. :-P – MC Emperor Mar 8 '12 at 14:53
  • You should read about 'DateTime:diff' and DateInterval in the php manual. – Ofir Baruch Mar 8 '12 at 14:54
  • relativeTime() is the part I wanted. I wouldn't know how to do it correctly. – Sami Dz Hamida Mar 8 '12 at 14:57
  • @MCEmperor: that's NOT required and even discouraged – Martin. Mar 8 '12 at 15:17
0

In addition to what @Martin. said, you can get the current timestamp using time(), and then retrieve the last login timestamp from the database, and subtract it from the current timestamp.

<?php

$date = strtotime("2012-03-08 16:02:35");
$now = time();
$diff = $now - $date;

?>

...then $diff is the time difference in seconds. Then you can calculate whatever you want.

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