I am using the following code to transform a universal time code into something a little more user friendly.

$meeting_time = date('g:i a', strtotime($time_date_data));

But now I need to subtract 6 hours from meeting_time. Should I do it after the code above or can I work it into the same date function?

Something like:

$meeting_time = date('g:i a' - 6, strtotime($time_date_data));
up vote 19 down vote accepted
$meeting_time = date('g:i a', strtotime($time_date_data) - 60 * 60 * 6);

String-to-time (strtotime) returns a Unix Time Stamp which is in seconds (since Epoch), so you can simply subtract the 21600 seconds, before converting it back to the specified date format.

  • Thanks for the explanation. +1 checked. – Denoteone Nov 21 '11 at 15:39

Try this:

// 6 hours, 3600 seconds in an hour
$meeting_time = date('g:i a', strtotime($time_date_data) - 6 * 3600);
  • Thanks +1 for the help – Denoteone Nov 21 '11 at 15:40
  • This answer was more precise on the time calculation for me. Thank You mc10. – Samuel Ramzan Sep 25 '17 at 18:42

Another approach:

$meeting_time = date('g:i a', strtotime('-6 hours', strtotime($time_date_data)));

You should be able to do this:

$meeting_time = date('g:i a', strtotime($time_date_data));
date_add($meeting_time, - date_interval_create_from_date_string('6 hours'));

The way of OO PHP:

$date = new DateTime(); // current time
echo 'Current: '. $date->format('Y-m-d H:i:s') . "\n";
$date->sub(new DateInterval('PT3H55M10S'));
echo $date->format('Y-m-d H:i:s') . "\n";

For sustract 6 hrs:

$date = new DateTime('2017-01-20'); // pass $time_date_data to here
$date->sub(new DateInterval('PT6H'));

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