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I figured this would be a very simple problem but I haven't found a solution anywhere.

I am creating a scheduling program in PHP and mySQL. The shifts have a startTime and endTime, each of which are stored as TIME in mySQL.

I want to add up the total hours for an employee during the week, so I tried:

$shifts = [...] //shifts for the week
$totalTime = 0; //I've also tried "0:0:0" and strtotime("0:00:00");

for($d = 0; $d < 7; $d++){
    $start = strtotime($shift_types[$shifts[$d]]['ShiftType']['start_time']);
    $end = strtotime($shift_types[$shifts[$d]]['ShiftType']['end_time']);
    echo date("g:ia", $start) . ' / ' . date("g:i a", $end); 
    $totalTime += ($end-$start);
    }
}

The problem with this, is that $totalTime doesn't come out to any reasonable number. I think this is because PHP is treating $totalTime as a timestamp since 1970, which would result in something completely different. All I really want is a value of net hours, it doesn't need to have any date-ish values associated with it.

I should mention that I'm displaying the total time with

echo date("g:i", $totalTime);

When it is run with a start of 9:30:00 and an end of 16:15:00, it displays "1:45". When the total time isn't touched (because there are no shifts), it displays "7:00".

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what is it coming up with and what values are you testing with as start/end? The result of the code should be in seconds so you might need to divide by 3600 (number of seconds in an hour) to get hours. –  Jonathan Kuhn Feb 26 '13 at 23:59
1  
You might want to look into TIMEDIFF –  Mike Feb 27 '13 at 0:01
    
@JonathanKuhn I added the details to the post. It doesn't seem like a division issue though. –  Luke Sapan Feb 27 '13 at 0:04
    
As @Mike noted, you can do all this with MySQL. No need to fetch results and let PHP calc it. –  Rudie Feb 27 '13 at 1:11
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2 Answers 2

up vote 0 down vote accepted

strtotime returns a Unix timestamp, the number of seconds since the epoch represented by that time. So working with seconds (and starting $totalTime at zero) is the correct approach. If you want the number of hours, you need to: $totalTime = $totalTime / (60 * 60); after your loop (divide by 3600 seconds / hour).

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It makes sense theoretically, but then why is it displaying hours even if $totalTime is still equal to 0? –  Luke Sapan Feb 27 '13 at 0:06
    
Are you sure that $totalTime is what you think it is? Print that out right before you make the call to date after the loop. –  Madbreaks Feb 27 '13 at 0:19
    
You're right, I don't know what I was thinking trying to format $totalTime using date. Changing it to echo $totalTime/(60*60) worked beautifully. –  Luke Sapan Feb 27 '13 at 0:22
    
Glad to hear it –  Madbreaks Feb 27 '13 at 0:23
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I think this does what you want to do:

$t1 = strtotime("2013-01-01 00:00:00");
$t2 = strtotime("2013-01-15 00:00:00");

echo round(($t2-$t1)/3600) ." hours". PHP_EOL;

Or you could look to use two DateTime objects and the diff() method as described in my blog post http://webmonkeyuk.wordpress.com/2011/05/04/working-with-date-and-time-in-php/

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