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How do I subtract and/or add elapsed time to a date in the format yyyy-mm-dd hh:mm:ss?
ie how do I add 16:49:13 to 2012-06-18 22:03:18 ?

Also, how do I subtract 16:49:13 from 2012-06-19 14:52:31?
I need the results to be in the format hh:mm:ss

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do you want to do this with php or with mysql? –  Dagon Jul 29 '12 at 20:21
    
with php, buddy! –  Loyd Jul 29 '12 at 20:22
    
How are you getting those time strings? –  vascowhite Jul 29 '12 at 20:26
    
I am getting them from a very large excel document(contains about 50 000 dates at a time). I upload them into a PHP system i am developing. I am writing code using the following formulae DURATION = ENDDATE - STARTDATE ENDDATE = STARTDATE + DURATION STARTDATE = ENDDATE - DURATION. I need to return the DURATION in the format HH:MM:SS. But, i need to return the STARTDATE & ENDDATE in the format yyyy-mm-dd hh:mm:ss. –  Loyd Jul 29 '12 at 20:36
    
OK, see my answer, you can output the result in whatever format you wish using that. –  vascowhite Jul 29 '12 at 20:41

4 Answers 4

up vote 0 down vote accepted

my quick idea:

<?php

$a="16:49:13"; 
$e=explode(':', $a);

$y="2012-06-18 22:03:18";

echo  date('d-m-Y h:i:s',strtotime("+ $e[0] hours $e[1] minutes $e[2] seconds ",strtotime($y)));

output: 19-06-2012 02:52:31

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it worked perfectly! thanks a lot mate! –  Loyd Jul 29 '12 at 20:55
    
However, the second challenge is subtracting $a from $y –  Loyd Jul 29 '12 at 20:55
    
change the + to a - in the strtotime() –  Dagon Jul 29 '12 at 20:57
    
Ah! thanks for the tip. i think the last thing is implemeting a little regex validation for YYYY-MM-DD HH:MM:SS before I do any calculations. –  Loyd Jul 29 '12 at 21:11
    
checkdate() perhaps ? –  Dagon Jul 29 '12 at 21:13

You could make use of PHP's DateTime objects for this. Something along the lines of:-

To add:-

$dateTime = new DateTime("2012-06-18 22:03:18");
list($hours, $minutes, $seconds) = explode(":", "16:49:13");
$seconds += $minutes * 60;
$seconds += $hours * 3600;
$interval = new DateInterval("PT{$seconds}S");
$dateTime->add($interval);

To subtract:-

$dateTime = new DateTime("2012-06-18 22:03:18");
list($hours, $minutes, $seconds) = explode(":", "16:49:13");
$seconds += $minutes * 60;
$seconds += $hours * 3600;
$interval = new DateInterval("PT{$seconds}S");
$dateTime->sub($interval);

Then use the DateTime::format() function to output the result any way you wish.

The datetime object wiill look after stuff such as leap years, time zones etc for you. These are all things that can easily make time calculations a pain in the ..

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Given two times such as: 23:54:23 and 16:49:13, you want the output to still be in HH:MM:SS format, representing the total amount of hours, minutes, and seconds resulting from the sum of the two dates (should output 40:43:36):

You can use this function:

function addTime($t1, $t2)
{
    $t1a = explode(':', $t1);
    $t2a = explode(':', $t2);

    $h = $t1a[0] + $t2a[0] + ((($t1a[1] + $t2a[1]) / 60) >= 1 ? 1 : 0);
    $m = (($t1a[1] + $t2a[1]) % 60) + ((($t1a[2] + $t2a[2]) / 60) >= 1 ? 1 : 0);
    $s = ($t1a[2] + $t2a[2]) % 60;

    if($m == 60)
    {
        $h++;
        $m = 0;
    }

    $h = strlen($h) < 2 ? '0'.$h : $h;
    $m = strlen($m) < 2 ? '0'.$m : $m;
    $s = strlen($s) < 2 ? '0'.$s : $s;

    return "$h:$m:$s";
}

$t1 = '23:54:23'; 
$t2 = '16:49:13';

echo addTime($t1, $t2); // 40:43:36
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Here's another way using strtotime function:

$myTime      = strtotime('2012-06-18 22:03:18');
$delta       = (16 * 60 * 60) + (49 * 60) + 13;
$myTimeMinus = $myTime - $delta;
$myTimePlus  = $myTime + $delta;
echo date('Y-m-d H:i:s', $myTimeMinus);

//2012-06-18 05:14:05

echo date('Y-m-d H:i:s', $myTimePlus);
// 2012-06-19 14:52:31
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