Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

hello every one i am working on a website where i used this code for date

if($fetch[type] == '2'){echo 'photo to ';}
        echo ' tutor profile</td>';
        echo '<td valign="top"><span>';
        echo $fetch['time'];
        echo '</tr></table></li>';

and got result as: enter image description here

but i want it should show result as: 1 year ago or 1 year 2 month ago or 2 days ago or 11 hour 30min ago...thats it... thanks in advance and if i missing somethng then freely ask to me..

share|improve this question
    
If you have only date and no time included you cant say 11h 30min ago. – Aivar May 9 '13 at 5:52
    
okay....but i can make it as 1 year ago or not..?? – Dinesh May 9 '13 at 5:53
    
This will help you... phpbook.net/… – Hiren Pandya May 9 '13 at 6:02
up vote 3 down vote accepted

This will calculate how many days have been passed from your date

$date = strtotime("2012-01-04");
$now = time();   
$time = $now - $date;
$newdate = floor($time/(60*60*24));

echo $newdate . ' days ago.';

This will output

491 days ago.
share|improve this answer

have a look at this awesome library PHP carbon Library

share|improve this answer

Try this:

<?php
          function time_since($since) 
          {
                  $chunks = array(
                          array(60 * 60 * 24 * 365 , 'year'),
                          array(60 * 60 * 24 * 30 , 'month'),
                          array(60 * 60 * 24 * 7, 'week'),
                          array(60 * 60 * 24 , 'day'),
                          array(60 * 60 , 'hour'),
                          array(60 , 'minute'),
                          array(1 , 'second')
                  );

                  for ($i = 0, $j = count($chunks); $i < $j; $i++) {
                          $seconds = $chunks[$i][0];
                          $name = $chunks[$i][1];
                          if (($count = floor($since / $seconds)) != 0) {
                                  break;
                          }
                  }

                  $print = ($count == 1) ? '1 '.$name : "$count {$name}s";
                  return $print;
          }
           $DT = strtotime("2012-06-10");
           echo time_since(time()-$DT);

          ?>

DEMO AT IDEONE

DEMO 2

DEMO 3

share|improve this answer
    
@ritesh_nitw...great help... – Dinesh May 9 '13 at 7:17

Code like this:

<?php

date_default_timezone_set("Europe/Tallinn");

$dates = Array(
    '2012-11-30',
    '2012-06-27',
    '2012-03-04',
    '2012-01-05',
    '2012-01-04'
);



foreach ($dates as $d)
{
    $unix_timestamp = strtotime($d);
    //As no time set it shows time as 00:00:00, as a day beginning time
    echo date("d.m.Y H:i:s", $unix_timestamp) . "<br>";
    $current_unix_timestamp = time();
    //Assuming all dates as in past
    $diff = $current_unix_timestamp - $unix_timestamp;
    echo ago($diff);
    echo '<br><br>';
}

function ago($diff)
{
    $second = 1;
    $minute = $second * 60;
    $hour   = $minute * 60;
    $day    = $hour * 24;
    $month  = $day * 27.554551; //average, will not give you exact difference, but close enough
    $year   = $day * 365;

    $ret = "";
    if (floor($diff/$year)!=0)
    {
        $ret .= floor($diff/$year) . ' year' . (floor($diff/$year)>1?'(s)':'') . ' ';
        $diff  -= floor($diff/$year) * $year;
    }

    if (floor($diff/$month)!=0)
    {
        $ret .= floor($diff/$month) . ' month' . (floor($diff/$month)>1?'(s)':'') . ' ';
        $diff  -= floor($diff/$month) * $month;
    }

    if (floor($diff/$day)!=0)
    {
        $ret .= floor($diff/$day) . ' day' . (floor($diff/$day)>1?'(s)':'') . ' ';
        $diff  -= floor($diff/$day) * $day;
    }

    if (floor($diff/$hour)!=0)
    {
        $ret .= floor($diff/$hour) . ' hour' . (floor($diff/$hour)>1?'(s)':'') . ' ';
        $diff  -= floor($diff/$hour) * $hour;
    }

    if (floor($diff/$minute)!=0)
    {
        $ret .= floor($diff/$minute) . ' minute' . (floor($diff/$minute)>1?'(s)':'') . ' ';
        $diff  -= floor($diff/$minute) * $minute;
    }

    if (floor($diff/$second)!=0)
    {
        $ret .= floor($diff/$second) . ' seconds' . (floor($diff/$second)>1?'(s)':'') . ' ';
        $diff  -= floor($diff/$second) * $second;
    }

    $ret .= 'ago';

    return $ret;
}
?>

Will give result like this on 2013-05-09 09:29

30.11.2012 00:00:00
5 month(s) 22 day(s) 13 hour(s) 55 minute(s) 22 seconds(s) ago

27.06.2012 00:00:00
11 month(s) 13 day(s) 7 hour(s) 4 minute(s) 3 seconds(s) ago

04.03.2012 00:00:00
1 year 2 month(s) 11 day(s) 5 hour(s) 51 minute(s) 2 seconds(s) ago

05.01.2012 00:00:00
1 year 4 month(s) 15 day(s) 3 hour(s) 13 minute(s) 56 seconds(s) ago

04.01.2012 00:00:00
1 year 4 month(s) 16 day(s) 3 hour(s) 13 minute(s) 56 seconds(s) ago
share|improve this answer

Get the time difference in the smallest unit you can (let's say seconds, for argument's sake).

Then get a limit to tell you when to step from one approximation to the next.

E.g.

<?php

    $appro = array(
        array( 1, 'second', 60 ), // Up to 60 seconds it's seconds
        array(60, 'minute', 60 ), // Divide by 60, get minutes. Up to 60 minutes is OK
        array(60, 'hour', 24),    // Divide by 60, get hours. Up to 24 is OK
        array(24, 'day', 7),      // Divide by 24, get days.
        array(7, 'week', 5),      // Divide by 7 to get weeks
        array(30.0/7.0, 'month', 12), // Re-multiply by 7 and divide by 30: months
        array(365.0/30.0, 'year', 99), // Get days again, divide by 365
    );

    $timediff = 366*24*3600; // Get this timediff somehow, in seconds

    $ap = $timediff;
    foreach($appro as $check)
    {
        list($scale, $name, $maximum) = $check;
        $ap /= $scale;
        if ($ap < $maximum)
        {
            print "Scale=$scale, $ap\n";
            $what = $name;
            switch (floor($ap))
            {
                case 0: $what = "less than one $name"; break;
                case 1: $what = "one $name"; break;
                default: $what = floor($ap) . " {$name}s"; break;
            }
            break;
        }
    }
    print "This was $what ago.";
?>

Of course, this will say that 1.5 years ago is "one year ago". You can modify the algorithm so that the remainder is multiplied by $scale and rendered in the unit below, so that 1.5 years becomes "one year and six months". This also makes it a bit awkward at times, since 9 days becomes "one week and two days ago".

It is possible to extend the algorithm and try rendering a period in both the most fitting unit, the one above, and the one below, provided the approximation is correct, and finally choose the shortest form (so "nine days" beats "one week and two days", and "six weeks" beats "one month and two weeks").

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.