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I'm trying to calculate the following value, which I'm getting from my database 2014-08-29 04:37:36 I want to calculate this value within current date time.

Like my above value is 2014-08-29 04:37:36 but I want to show 3 days left instead 2014-08-29 04:37:36. If my value is 2014-08-23 04:37:36 it should show -2 days left.

Whatever my value is, i want to calculate it and show the time left, if it expired than it should show a minus sign as I explained above. Can anyone help me please!!

This question is much simpler and different than the references given to mark as duplicate. My question is clear and simple, not complex to the references given by HAL9000, Boann, karthikr, amphetamachine, Shankar Damodaran. Also the references are misleading my question.

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    Have you done something on this? Is so, please post that code – arunrc Aug 25 '14 at 9:59
  • those are much complicated. – Sahed Aug 25 '14 at 10:41
  • @Boann Please read the question again since your reference has nothing do do with this question. – hex494D49 Aug 25 '14 at 10:49
  • @HAL9000 Your reference is a misleading post as well. – hex494D49 Aug 25 '14 at 10:51
  • Im requesting to mark my question to not duplicate. – Sahed Aug 26 '14 at 14:46
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Try the snippet below

<?php
$datestr = "2014-08-28 19:10:18";
$date = strtotime($datestr);

$diff = $date - time();         
$days = floor($diff / (60 * 60 * 24));  
$hours = round(($diff - $days * 60 * 60 * 24) / (60 * 60));

echo "$days days $hours hours left";
?>

Output:

3 days 9 hours left

Demo

  • @Sahed I know; glad it helped ;) – hex494D49 Aug 25 '14 at 10:05
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Try This

$dateNow = new DateTime(date('Y-m-d H:i:s'));
$getDate = new DateTime("2014-08-29 04:37:36");
$diff= $getDate->diff($dateNow);
$return = $diff->days;
if($dateNow>$getDate)
  echo "-".$return." Days Left";
else
  echo $return." Days Left";
  • Just a note; it doesn't work on PHP < 5.2 (I guess) – hex494D49 Aug 25 '14 at 10:07
  • May be, I test it PHP 5.5 :( – Habibul Morsalin Aug 25 '14 at 10:08
  • Same as above: Actually; PHP < 5.3, but I don't think answers should be discarded because they don't work with older versions of PHP, especially when that older release has been released 5 years ago – RichardBernards Aug 25 '14 at 10:13
  • So, as has been pointed by @RichardBernards ('cause I wasn't sure) usage of DateTime is version ( PHP >= 5.3) dependent – hex494D49 Aug 25 '14 at 10:17
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Use the PHP DateTime::diff function described here

Quick example:

<?php

$date1 = new DateTime("now");
$date2 = date_create('2014-12-10');

$diff = date_diff($date1, $date2);

echo $diff->format('%R%a days');

demo

The nice thing about this code is that you can change the return string format easily using DateInterval::format

  • Actually; PHP < 5.3, but I don't think answers should be discarded because they don't work with older versions of PHP, especially when that older release has been released 5 years ago. – RichardBernards Aug 25 '14 at 10:13
  • Of course not ;) just wanted to point it out, since I had the same issue a few weeks ago on a project running on PHP < 5.2 I guess – hex494D49 Aug 25 '14 at 10:15

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