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Is there any way to find the month difference in PHP? I have the input of from-date 2003-10-17 and to-date 2004-03-24. I need to find how many months there are within these two days. Say if 6 months, I need the output in months only. Thanks for guiding me for day difference.

I find the solution through MySQL but I need it in PHP. Anyone help me, Thanks in advance.

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2  
What exactly is a month in this case? THe calendar month? 30 days? –  Pekka 웃 Apr 21 '10 at 9:14
3  
Duplicates: stackoverflow.com/search?q=date+difference+php –  Gordon Apr 21 '10 at 9:19

7 Answers 7

up vote 2 down vote accepted

Here's a quick one:

$date1 = mktime(0,0,0,10,0,2003); // m d y, use 0 for day
$date2 = mktime(0,0,0,3,0,2004); // m d y, use 0 for day

echo round(($date2-$date1) / 60 / 60 / 24 / 30);
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13  
This will become more and more inaccurate the farther apart the two dates are and may eventually round the wrong way... –  deceze Apr 21 '10 at 9:22
4  
What will happened if month has 31 days in case January, March, May, July, August, October, December or 28 days in case February, coz you divided by 30. –  Frank Dec 27 '12 at 6:53

The easiest way without reinventing the wheel. This'll give you the full months difference. I.e. the below two dates are almost 76 months apart, but the result is 75 months.

date_default_timezone_set('Asia/Tokyo');  // you are required to set a timezone

$date1 = new DateTime('2009-08-12');
$date2 = new DateTime('2003-04-14');

$diff = $date1->diff($date2);

echo (($diff->format('%y') * 12) + $diff->format('%m')) . " full months difference";
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great work:just a small question into this how to get number of days using this? –  noobie-php Jul 26 '12 at 7:36
1  
@noobie Please RTFM for DateInterval::format to find all possible formatting options. –  deceze Jul 26 '12 at 10:22
    
Weird results: From: 2013-03-01, Until: 2013-04-01, diff year: 0, diff month: 1, diff days: 3. Months with less then 31 days also give diff in months=0 –  thehpi Feb 8 '13 at 12:24
    
@thehpi Interesting. But this is bound to be imprecise whatever you do, since "a month" is an terribly vague unit of time. Should it count as one month as soon as a month boundary is crossed between two dates? Or only if a full month lies between them? What is "a full month"? 28 days? 30? 31? –  deceze Feb 8 '13 at 13:41
1  
Use with caution! Difference in months between 01.01.2013 and 31.03.2013 will be 2 months (not 3 as maybe expected!) –  Valentin Despa Nov 14 '13 at 12:49

Wow, way to overthink the problem... How about this version:

function monthsBetween($startDate, $endDate) {
    $retval = "";

    // Assume YYYY-mm-dd - as is common MYSQL format
    $splitStart = explode('-', $startDate);
    $splitEnd = explode('-', $endDate);

    if (is_array($splitStart) && is_array($splitEnd)) {
        $difYears = $splitEnd[0] - $splitStart[0];
        $difMonths = $splitEnd[1] - $splitStart[1];
        $difDays = $splitEnd[2] - $splitStart[2];

        $retval = ($difDays > 0) ? $difMonths : $difMonths - 1;
        $retval += $difYears * 12;
    }
    return $retval;
}

NB: unlike several of the other solutions, this doesn't depend on the date functions added in PHP 5.3, since many shared hosts aren't there yet.

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http://www.php.net/manual/en/datetime.diff.php

This returns a DateInterval object which has a format method.

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After testing tons of solutions, putting all in a unit test, this is what I come out with:

/**
 * Calculate the difference in months between two dates (v1 / 18.11.2013)
 *
 * @param \DateTime $date1
 * @param \DateTime $date2
 * @return int
 */
public static function diffInMonths(\DateTime $date1, \DateTime $date2)
{
    $diff =  $date1->diff($date2);

    $months = $diff->y * 12 + $diff->m + $diff->d / 30;

    return (int) round($months);
}

For example it will return (test cases from the unit test):

  • 01.11.2013 - 30.11.2013 - 1 month
  • 01.01.2013 - 31.12.2013 - 12 months
  • 31.01.2011 - 28.02.2011 - 1 month
  • 01.09.2009 - 01.05.2010 - 8 months
  • 01.01.2013 - 31.03.2013 - 3 months
  • 15.02.2013 - 15.04.2013 - 2 months
  • 01.02.1985 - 31.12.2013 - 347 months

Notice: Because of the rounding it does with the days, even a half of a month will be rounded, which may lead to issue if you use it with some cases. So DO NOT USE it for such cases, it will cause you issues.

For example:

  • 02.11.2013 - 31.12.2013 will return 2, not 1 (as expected).
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<?php
  # end date is 2008 Oct. 11 00:00:00
  $_endDate = mktime(0,0,0,11,10,2008);
  # begin date is 2007 May 31 13:26:26
  $_beginDate = mktime(13,26,26,05,31,2007);

  $timestamp_diff= $_endDate-$_beginDate +1 ;
  # how many days between those two date
  $days_diff = $timestamp_diff/2635200;

?>

Reference: http://au.php.net/manual/en/function.mktime.php#86916

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3  
Same problem as @Kai's solution, very optimistic assumption that a month has 30 days... –  deceze Apr 21 '10 at 9:34
function monthsDif($start, $end)
{
    // Assume YYYY-mm-dd - as is common MYSQL format
    $splitStart = explode('-', $start);
    $splitEnd = explode('-', $end);

    if (is_array($splitStart) && is_array($splitEnd)) {
        $startYear = $splitStart[0];
        $startMonth = $splitStart[1];
        $endYear = $splitEnd[0];
        $endMonth = $splitEnd[1];

        $difYears = $endYear - $startYear;
        $difMonth = $endMonth - $startMonth;

        if (0 == $difYears && 0 == $difMonth) { // month and year are same
            return 0;
        }
        else if (0 == $difYears && $difMonth > 0) { // same year, dif months
            return $difMonth;
        }
        else if (1 == $difYears) {
            $startToEnd = 13 - $startMonth; // months remaining in start year(13 to include final month
            return ($startToEnd + $endMonth); // above + end month date
        }
        else if ($difYears > 1) {
            $startToEnd = 13 - $startMonth; // months remaining in start year 
            $yearsRemaing = $difYears - 2;  // minus the years of the start and the end year
            $remainingMonths = 12 * $yearsRemaing; // tally up remaining months
            $totalMonths = $startToEnd + $remainingMonths + $endMonth; // Monthsleft + full years in between + months of last year
            return $totalMonths;
        }
    }
    else {
        return false;
    }
}
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1  
Ammended - changed $startToEnd = 12 - $startMonth; to $startToEnd = 13 - $startMonth; As before it wasn't counting the duration of december –  Adam Fekete Jan 12 '12 at 10:26

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