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I am trying to convert a timestamp of the format 2009-09-12 20:57:19 and turn it into something like 3 minutes ago with PHP.

I found a useful script to do this, but I think it's looking for a different format to be used as the time variable. The script I'm wanting to modify to work with this format is:

function _ago($tm,$rcs = 0) {
    $cur_tm = time(); 
    $dif = $cur_tm-$tm;
    $pds = array('second','minute','hour','day','week','month','year','decade');
    $lngh = array(1,60,3600,86400,604800,2630880,31570560,315705600);

    for($v = sizeof($lngh)-1; ($v >= 0)&&(($no = $dif/$lngh[$v])<=1); $v--); if($v < 0) $v = 0; $_tm = $cur_tm-($dif%$lngh[$v]);
        $no = floor($no);
        if($no <> 1)
            $pds[$v] .='s';
        $x = sprintf("%d %s ",$no,$pds[$v]);
        if(($rcs == 1)&&($v >= 1)&&(($cur_tm-$_tm) > 0))
            $x .= time_ago($_tm);
        return $x;
    }

I think on those first few lines the script is trying to do something that looks like this (different date format math):

$dif = 1252809479 - 2009-09-12 20:57:19;

How would I go about converting my timestamp into that (unix?) format?

share|improve this question
    
I don't think any of the answers answered your question. If I'm right, you want $unixtime = strtotime($mysqltime). –  Vivek Ghaisas Jun 11 '13 at 5:58
    
possible duplicate of How to calculate the difference between two dates using PHP? –  Glavić Sep 18 '13 at 2:38
    

15 Answers 15

up vote 51 down vote accepted
function time_elapsed_string($ptime)
{
    $etime = time() - $ptime;

    if ($etime < 1)
    {
        return '0 seconds';
    }

    $a = array( 365 * 24 * 60 * 60  =>  'year',
                 30 * 24 * 60 * 60  =>  'month',
                      24 * 60 * 60  =>  'day',
                           60 * 60  =>  'hour',
                                60  =>  'minute',
                                 1  =>  'second'
                );
    $a_plural = array( 'year'   => 'years',
                       'month'  => 'months',
                       'day'    => 'days',
                       'hour'   => 'hours',
                       'minute' => 'minutes',
                       'second' => 'seconds'
                );

    foreach ($a as $secs => $str)
    {
        $d = $etime / $secs;
        if ($d >= 1)
        {
            $r = round($d);
            return $r . ' ' . ($r > 1 ? $a_plural[$str] : $str) . ' ago';
        }
    }
}
share|improve this answer
25  
This is not good solution, since it is using 30days for month, and 12x30days for year, and because of that it will return invalid number of years bellow year <= 1978. Example where it returns 39 years, but it should 38. And it also doesn't work for years bellow 1970. –  Glavić Oct 2 '13 at 12:33
9  
Terrible solution. Why does this have 42 upvotes and selected answer? Since when does every month have 30 days? –  BadHorsie Mar 14 at 17:22
    
@Ayman Hussein, it gives me this error: Fatal error: time_elapsed_string(): Unknown property (w) in –  ThePixelPony Oct 2 at 15:08
    
Down votes please !! –  wassim boy Oct 21 at 8:37
    
@wassimboy, could you please tell me why you want to down vote my answer. if my answer is not good enough you can write a comment to correct it without down vote. –  Ayman Hussein Oct 22 at 9:15

Use example :

echo time_elapsed_string('2013-05-01 00:22:35');
echo time_elapsed_string('@1367367755'); # timestamp input
echo time_elapsed_string('2013-05-01 00:22:35', true);

Input can be any supported date and time format.

Output :

4 months ago
4 months, 2 weeks, 3 days, 1 hour, 49 minutes, 15 seconds ago

Function :

function time_elapsed_string($datetime, $full = false) {
    $now = new DateTime;
    $ago = new DateTime($datetime);
    $diff = $now->diff($ago);

    $diff->w = floor($diff->d / 7);
    $diff->d -= $diff->w * 7;

    $string = array(
        'y' => 'year',
        'm' => 'month',
        'w' => 'week',
        'd' => 'day',
        'h' => 'hour',
        'i' => 'minute',
        's' => 'second',
    );
    foreach ($string as $k => &$v) {
        if ($diff->$k) {
            $v = $diff->$k . ' ' . $v . ($diff->$k > 1 ? 's' : '');
        } else {
            unset($string[$k]);
        }
    }

    if (!$full) $string = array_slice($string, 0, 1);
    return $string ? implode(', ', $string) . ' ago' : 'just now';
}
share|improve this answer
    
The week part is nice but overall the function should be more flexible ($full should be a string input to filter the output as needed). e.g. time_elapsed_string($datetime, $format = "ymw"). P.S. Flat version: stackoverflow.com/a/5010169/318765 –  mgutt Jan 28 at 12:19
2  
Regarding my last comment: Change $full = false to $level = 7 and if (!$full) $string = array_slice($string, 0, 1); to $string = array_slice($string, 0, $level); and call time_elapsed_string($datetime, 2) to obtain only the two highest date strings. I think this shoud fit all needs. –  mgutt Jan 28 at 12:39
1  
@mgutt: ofc this function will not work for any-case-user-wants-scenario; but it is a nice starting point, where you can, with minimal fix, get what you need, like you already demonstrated... –  Glavić Jan 28 at 13:12

I modified the original function a bit to be (in my opinion more useful, or logical).

// display "X time" ago, $rcs is precision depth
function time_ago ($tm, $rcs = 0) {
  $cur_tm = time(); 
  $dif = $cur_tm - $tm;
  $pds = array('second','minute','hour','day','week','month','year','decade');
  $lngh = array(1,60,3600,86400,604800,2630880,31570560,315705600);

  for ($v = count($lngh) - 1; ($v >= 0) && (($no = $dif / $lngh[$v]) <= 1); $v--);
    if ($v < 0)
      $v = 0;
  $_tm = $cur_tm - ($dif % $lngh[$v]);

  $no = ($rcs ? floor($no) : round($no)); // if last denomination, round

  if ($no != 1)
    $pds[$v] .= 's';
  $x = $no . ' ' . $pds[$v];

  if (($rcs > 0) && ($v >= 1))
    $x .= ' ' . $this->time_ago($_tm, $rcs - 1);

  return $x;
}
share|improve this answer
    
Any function that uses math based on a fixed calendar is fundamentally flawed. Use the Date object, don't do math with time. –  Chris Sep 13 at 0:42

If using MySQL, use the UNIX_TIMESTAMP() function.

share|improve this answer

This is actually a better solution I've found. Uses jQuery however it works perfectly. Also it refreshes automatically similar to the way SO and Facebook does so you don't have to refresh the page to see the updates.

This plugin will read your datetime attr in the <time> tag and fill it in for you.

e.g. "4 minutes ago" or "about 1 day ago

http://timeago.yarp.com/

share|improve this answer

You'll have to take each individual piece of your timestamp, and convert it into Unix time. For example for the timestamp, 2009-09-12 20:57:19.

(((2008-1970)365)+(830)+12)*24+20 would give you a ROUGH estimate of the hours since January 1st, 1970.

Take that number, multiply by 60 and add 57 to get the minutes.

Take that, multiply by 60 and add 19.

That would convert it very roughly and inaccurately however.

Is there any reason you can't just take the normal Unix time to begin with?

share|improve this answer
    
is it better to store as a unix time in the sql table? I'm using mysqls automatic timestamp update currently on a timestamp column (which can be changed to unix). I'm just learning what is better? –  willdanceforfun Sep 13 '09 at 2:49
    
Definitely. I believe the default for a mySQL table is the type you referenced, but Unix time is far more practical. You can always store it as an int. –  LukeWarm74 Sep 13 '09 at 2:55
    
Then again, Dav's solutions works well too. xD –  LukeWarm74 Sep 13 '09 at 2:56
    
Your database should have a function to convert the date to UNIX format. In mysql you use UNIX_TIMESTAMP(). Oh, and you should generally store your dates as DATETIMEs rather than INTs, so that you can use the sql functions for date manipulation. –  CpnCrunch Sep 23 '13 at 20:43
    
You should never, ever use math on time. You're assuming a fixed calendar, which doesn't exist. Use the Date object provided in php to work with... dates. –  Chris Sep 13 at 0:43

$time_elapsed = timeAgo($time_ago); //The argument $time_ago is in timestamp (Y-m-d H:i:s)format.

//Function definition

function timeAgo($time_ago)
{
    $time_ago = strtotime($time_ago);
    $cur_time   = time();
    $time_elapsed   = $cur_time - $time_ago;
    $seconds    = $time_elapsed ;
    $minutes    = round($time_elapsed / 60 );
    $hours      = round($time_elapsed / 3600);
    $days       = round($time_elapsed / 86400 );
    $weeks      = round($time_elapsed / 604800);
    $months     = round($time_elapsed / 2600640 );
    $years      = round($time_elapsed / 31207680 );
    // Seconds
    if($seconds <= 60){
        return "just now";
    }
    //Minutes
    else if($minutes <=60){
        if($minutes==1){
            return "one minute ago";
        }
        else{
            return "$minutes minutes ago";
        }
    }
    //Hours
    else if($hours <=24){
        if($hours==1){
            return "an hour ago";
        }else{
            return "$hours hrs ago";
        }
    }
    //Days
    else if($days <= 7){
        if($days==1){
            return "yesterday";
        }else{
            return "$days days ago";
        }
    }
    //Weeks
    else if($weeks <= 4.3){
        if($weeks==1){
            return "a week ago";
        }else{
            return "$weeks weeks ago";
        }
    }
    //Months
    else if($months <=12){
        if($months==1){
            return "a month ago";
        }else{
            return "$months months ago";
        }
    }
    //Years
    else{
        if($years==1){
            return "one year ago";
        }else{
            return "$years years ago";
        }
    }
}

share|improve this answer

Here is my solution please check and modify according your requirements

function getHowLongAgo($date, $display = array('Year', 'Month', 'Day', 'Hour', 'Minute', 'Second'), $ago = '') {
        date_default_timezone_set('Australia/Sydney');
        $timestamp = strtotime($date);
        $timestamp = (int) $timestamp;
        $current_time = time();
        $diff = $current_time - $timestamp;

        //intervals in seconds
        $intervals = array(
            'year' => 31556926, 'month' => 2629744, 'week' => 604800, 'day' => 86400, 'hour' => 3600, 'minute' => 60
        );

        //now we just find the difference
        if ($diff == 0) {
            return ' Just now ';
        }

        if ($diff < 60) {
            return $diff == 1 ? $diff . ' second ago ' : $diff . ' seconds ago ';
        }

        if ($diff >= 60 && $diff < $intervals['hour']) {
            $diff = floor($diff / $intervals['minute']);
            return $diff == 1 ? $diff . ' minute ago ' : $diff . ' minutes ago ';
        }

        if ($diff >= $intervals['hour'] && $diff < $intervals['day']) {
            $diff = floor($diff / $intervals['hour']);
            return $diff == 1 ? $diff . ' hour ago ' : $diff . ' hours ago ';
        }

        if ($diff >= $intervals['day'] && $diff < $intervals['week']) {
            $diff = floor($diff / $intervals['day']);
            return $diff == 1 ? $diff . ' day ago ' : $diff . ' days ago ';
        }

        if ($diff >= $intervals['week'] && $diff < $intervals['month']) {
            $diff = floor($diff / $intervals['week']);
            return $diff == 1 ? $diff . ' week ago ' : $diff . ' weeks ago ';
        }

        if ($diff >= $intervals['month'] && $diff < $intervals['year']) {
            $diff = floor($diff / $intervals['month']);
            return $diff == 1 ? $diff . ' month ago ' : $diff . ' months ago ';
        }

        if ($diff >= $intervals['year']) {
            $diff = floor($diff / $intervals['year']);
            return $diff == 1 ? $diff . ' year ago ' : $diff . ' years ago ';
        }
    }

Thanks

share|improve this answer
# This function prints the difference between two php datetime objects
# in a more human readable form
# inputs should be like strtotime($date)
function humanizeDateDiffference($now,$otherDate=null,$offset=null){
    if($otherDate != null){
        $offset = $now - $otherDate;
    }
    if($offset != null){
        $deltaS = $offset%60;
        $offset /= 60;
        $deltaM = $offset%60;
        $offset /= 60;
        $deltaH = $offset%24;
        $offset /= 24;
        $deltaD = ($offset > 1)?ceil($offset):$offset;      
    } else{
        throw new Exception("Must supply otherdate or offset (from now)");
    }
    if($deltaD > 1){
        if($deltaD > 365){
            $years = ceil($deltaD/365);
            if($years ==1){
                return "last year"; 
            } else{
                return "<br>$years years ago";
            }   
        }
        if($deltaD > 6){
            return date('d-M',strtotime("$deltaD days ago"));
        }       
        return "$deltaD days ago";
    }
    if($deltaD == 1){
        return "Yesterday";
    }
    if($deltaH == 1){
        return "last hour";
    }
    if($deltaM == 1){
        return "last minute";
    }
    if($deltaH > 0){
        return $deltaH." hours ago";
    }
    if($deltaM > 0){
        return $deltaM." minutes ago";
    }
    else{
        return "few seconds ago";
    }
}
share|improve this answer

Here is solution toy your problem this converts a time stamp to

years ago if it is more than an year ago months ago if it is more than a month ago week ago days ago hours ago seconds ago

http://itfeast.blogspot.in/2013/08/php-convert-timestamp-into-facebook.html

share|improve this answer
$time_ago = ' ';
$time = time() - $time; // to get the time since that moment
$tokens = array (
31536000 => 'year',2592000 => 'month',604800 => 'week',86400 => 'day',3600 => 'hour',
60  => 'minute',1 => 'second');
foreach ($tokens as $unit => $text) {
if ($time < $unit)continue;
$numberOfUnits = floor($time / $unit);
$time_ago = ' '.$time_ago. $numberOfUnits.' '.$text.(($numberOfUnits>1)?'s':'').'  ';
$time = $time % $unit;}echo $time_ago;
share|improve this answer

just pass the date time to this func. it would print out in time ago format for you

    function convert($datetime){
      $time=strtotime($datetime);
      $diff=time()-$time;
      $diff/=60;
      $var1=floor($diff);
      $var=$var1<=1 ? 'min' : 'mins';
      if($diff>=60){
        $diff/=60;
        $var1=floor($diff);
        $var=$var1<=1 ? 'hr' : 'hrs';
      }
      if($diff>=24){
        $diff/=24;
        $var1=floor($diff);
        $var=$var1<=1 ? 'day' : 'days';
      }
      if($diff>=30.4375){
        $diff/=30.4375;
        $var1=floor($diff);
        $var=$var1<=1 ? 'month' : 'months';
      }
      if($diff>=12){
        $diff/=12;
        $var1=floor($diff);
        $var=$var1<=1 ? 'year' : 'years';
       }
      echo $var1,' ',$var,' ago';
      }
share|improve this answer

The following is a very simple and extremely efficient solution.

function timeElapsed($originalTime){

        $timeElapsed=time()-$originalTime;

        /*
          You can change the values of the following 2 variables 
          based on your opinion. For 100% accuracy, you can call
          php's cal_days_in_month() and do some additional coding
          using the values you get for each month. After all the
          coding, your final answer will be approximately equal to
          mine. That is why it is okay to simply use the average
          values below.
        */
        $averageNumbDaysPerMonth=(365.242/12);
        $averageNumbWeeksPerMonth=($averageNumbDaysPerMonth/7);

        $time1=(((($timeElapsed/60)/60)/24)/365.242);
        $time2=floor($time1);//Years
        $time3=($time1-$time2)*(365.242);
        $time4=($time3/$averageNumbDaysPerMonth);
        $time5=floor($time4);//Months
        $time6=($time4-$time5)*$averageNumbWeeksPerMonth;
        $time7=floor($time6);//Weeks
        $time8=($time6-$time7)*7;
        $time9=floor($time8);//Days
        $time10=($time8-$time9)*24;
        $time11=floor($time10);//Hours
        $time12=($time10-$time11)*60;
        $time13=floor($time12);//Minutes
        $time14=($time12-$time13)*60;
        $time15=round($time14);//Seconds

        $timeElapsed=$time2 . 'yrs ' . $time5 . 'months ' . $time7 . 
                     'weeks ' . $time9 .  'days ' . $time11 . 'hrs '
                     . $time13 . 'mins and ' . $time15 . 'secs.';

        return $timeElapsed;

}

echo timeElapsed(1201570814);

Sample output:

6yrs 4months 3weeks 4days 12hrs 40mins and 36secs.

share|improve this answer

Here's my solution for a notification module I built some time ago. It returns output similar to Facebook's notifications dropdown (eg. 1 day ago, Just now, etc).

public function getTimeDifference($time) {
    //Let's set the current time
    $currentTime = date('Y-m-d H:i:s');
    $toTime = strtotime($currentTime);

    //And the time the notification was set
    $fromTime = strtotime($time);

    //Now calc the difference between the two
    $timeDiff = floor(abs($toTime - $fromTime) / 60);

    //Now we need find out whether or not the time difference needs to be in
    //minutes, hours, or days
    if ($timeDiff < 2) {
        $timeDiff = "Just now";
    } elseif ($timeDiff > 2 && $timeDiff < 60) {
        $timeDiff = floor(abs($timeDiff)) . " minutes ago";
    } elseif ($timeDiff > 60 && $timeDiff < 120) {
        $timeDiff = floor(abs($timeDiff / 60)) . " hour ago";
    } elseif ($timeDiff < 1440) {
        $timeDiff = floor(abs($timeDiff / 60)) . " hours ago";
    } elseif ($timeDiff > 1440 && $timeDiff < 2880) {
        $timeDiff = floor(abs($timeDiff / 1440)) . " day ago";
    } elseif ($timeDiff > 2880) {
        $timeDiff = floor(abs($timeDiff / 1440)) . " days ago";
    }

    return $timeDiff;
}
share|improve this answer

Yo can use:

date("Y-m-d H:i:s",strtotime("1 day ago"));
share|improve this answer

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