20

How can I check whether a year is bisect (i.e. a leap year) in php ?

1
  • 2
    Years are 'leap years', if they are divisible by 4 (or 400), but not 100.
    – gen_Eric
    Apr 15, 2011 at 17:14

7 Answers 7

33

You can use PHP's date() function to do this...

// L will return 1 if it is a leap year, 0 otherwise
echo date('L');

// use your own timestamp
echo date('L', strtotime('last year'));

// for specific year
$year = 1999;
$leap = date('L', mktime(0, 0, 0, 1, 1, $year));
echo $year . ' ' . ($leap ? 'is' : 'is not') . ' a leap year.';

Let me know if this does this trick for you, Cheers!

UPDATE: Added Example for Specific Year

1
  • 2
    Just to let you know, 2400 will return 0. So it fails there.
    – user1537415
    Nov 21, 2013 at 7:48
17

A bisect year is another name for a leap year. Use the L formatter, where $year is the year you are testing:

echo (date('L', strtotime("$year-01-01")) ? 'Yes' : 'No');

To adjust the discordance between the calendar and seasons, the Julian calendar used the calculations of the Greek astronomer Sosigene and was based on the adoption of a 365.25 days year: 3 years of 365 days followed by a 366 days year, the supplementary day being added always after the 24th of February (sexto ante calendas Martiis = the sixth day before the March calends) being called bis sexto (the sixth day bis), hence the names of bisect year and bisect day for the leap day. The year was divided in 12 months, which alternated 31 and 30 days and February had, in normal years, 29 days and 30 days in bisect years.

Later, when the eighth month was dedicated to the emperor Augustus (August), this month was made of 31 days to match July, the month dedicated to Julius Caesar. That's why February was made of 28 days, having 29 days in bisect years.

http://news.softpedia.com/news/The-History-of-Modern-Calendar-and-Bisect-Year-79892.shtml

14
function is_leap_year($year)
{
    return ((($year % 4) == 0) && ((($year % 100) != 0) || (($year %400) == 0)));
}
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  • 2
    Note that this code is 4.9 times faster than other ones given here (using date conversions) and output the exact same result from year 101 to 99999.
    – KyleK
    Mar 16, 2019 at 10:46
4

Using the DateTime class:

$year = 2000;
$isLeap = DateTime::createFromFormat('Y', $year)->format('L') === "1";
var_dump($isLeap); // bool(true)
2

Problem of checking if year is leap year is, if julian or gregorian calendar is used.

Meanwhile year in julian calendar has 365,25, year in gregorian calendar has 365,2422. So, gregorian year is of 11 minutes shorter than julian. And general rule for leap years (year/4 must be integer) is not valid at all times.

Year/4
Year/100 & Year/400

So most of years when Year/100 are not leap years.

Also, there is one another important condition for this checking.

Year >= 1583

As gregorian calendar was ordered to use in 1582 and this year was affected by changes caused by beginning of usage of this calendar (there was Thursday 4th October and then 15th October - days between were deleted), 1583 is the first year that is countable as fully gregorian (in gregorian calendar). But I decided to not test this condition, as this condition should be probably tested prior to testing of leap year - if it is not sure if year is counted in accordance with gregorian calendar.


For both calendars it is possible to write own function (or standalone static method) and result should be probably the same as if PHP's class would be used.

And also, usage of your own function/method will take shorter code.

public static function Is_LeapYear($Year = 1583)
{
    $LeapYear = FALSE;

    if(CheckTypes::Is_Integer($Year / 4))
    {
        if(CheckTypes::Is_Integer($Year / 100) && !CheckTypes::Is_Integer($Year / 400))
        {
            $LeapYear = FALSE;
        }
        else
        {
            $LeapYear = TRUE;
        }
    }
    else
    {
        $LeapYear = FALSE;
    }

    return $LeapYear;
}

CheckTypes is my own class for multiple type checking (else methods allow to multiple type checking). Is_Integer is (due to one type checking) equal to is_integer from PHP in-built functions. So, CheckTypes::Is_Integer($Year / 4) may be replaced with is_integer($Year / 4) and result will be the same.

This counting of leap year is in accorance with gregorian calendar, not julian.

1
  • Not a great solution since it takes way too much code for something this simple, but upvoted to recognize your amazing research job.
    – Mbotet
    Mar 6, 2020 at 13:52
1

If you care about performance, the faster way is:

!($year % 4) && ($year % 100 || !($year % 400))

It returns the exact same result than:

(bool) date('L', mktime(0, 0, 0, 1, 1, $year))

From year 101 to 999999 but it's about 30 times faster.

0
$isLeapYear = fn($year) => $year % 400 === 0 || ($year % 100 !== 0 && $year % 4 === 0)

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