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I'm looking for a way to calculate the age of a person, given their DOB in the format dd/mm/yyyy.

I was using the following function which worked fine for several months until some kind of glitch caused the while loop to never end and grind the entire site to a halt. Since there are almost 100,000 DOBs going through this function several times a day, it's hard to pin down what was causing this.

Does anyone have a more reliable way of calculating the age?

//replace / with - so strtotime works
$dob = strtotime(str_replace("/","-",$birthdayDate));       
$tdate = time();

$age = 0;
while( $tdate > $dob = strtotime('+1 year', $dob))
{
    ++$age;
}
return $age;

EDIT: this function seems to work OK some of the time, but returns "40" for a DOB of 14/09/1986

return floor((time() - strtotime($birthdayDate))/31556926);
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22 Answers 22

up vote 95 down vote accepted

This works fine.

<?php
  //date in mm/dd/yyyy format; or it can be in other formats as well
  $birthDate = "12/17/1983";
  //explode the date to get month, day and year
  $birthDate = explode("/", $birthDate);
  //get age from date or birthdate
  $age = (date("md", date("U", mktime(0, 0, 0, $birthDate[0], $birthDate[1], $birthDate[2]))) > date("md")
    ? ((date("Y") - $birthDate[2]) - 1)
    : (date("Y") - $birthDate[2]));
  echo "Age is:" . $age;
?>
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1  
Agree, sometime for that format we need to use mktime(). it seem php miscalculated the strtotime() with that format. –  GusDeCooL Aug 14 '11 at 17:04
17  
PHP's strtotime perfectly understands date formats, you don't need to worry: Dates in the m/d/y or d-m-y formats are disambiguated by looking at the separator between the various components: if the separator is a slash (/), then the American m/d/y is assumed; whereas if the separator is a dash (-) or a dot (.), then the European d-m-y format is assumed. php.net/manual/en/function.strtotime.php –  s3v3n Sep 10 '12 at 10:57
8  
Either way, it's an assumption. xkcd.com/1179 –  Niet the Dark Absol Jul 25 '13 at 18:13
    
This function is really more costly than the other solutions. It's coming from the overuse of the date() function. –  Jarzon Oct 4 '13 at 23:04
//replace / with - so strtotime works
$dob = strtotime(str_replace("/","-",$birthdayDate));       
$tdate = time();
return date('Y', $tdate) - date('Y', $dob);
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Doesnt work. Your function would indicate that someone Born on the 1st September 1990 is the same age as someone born on the 1st October 1990 - it would calculate (2010 - 1990) = 20 for both of them. –  PaulJWilliams Sep 23 '10 at 8:55
    
what precision of age do you need? month? day? –  Sergey Eremin Sep 23 '10 at 8:58
    
Year precision is fine –  stef Sep 23 '10 at 9:04
 $date = new DateTime($bithdayDate);
 $now = new DateTime();
 $interval = $now->diff($date);
 return $interval->y;
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I tried using DateTime() before but this freezes up the script. In my logs I see PHP Warning: date(): It is not safe to rely on the system's timezone settings, even when I add date_default_timezone_set('Europe/Brussels'); –  stef Sep 23 '10 at 9:01
1  
You're sure you removed the # before that line? You should set that in PHP.ini –  Wernight Sep 23 '10 at 9:06
    
No easy access to php.ini –  stef Sep 23 '10 at 9:08
    
It's usually safe to ignore that warning (especially in that case). –  Wernight Sep 23 '10 at 9:21
    
Thanks alot, this works great –  Joshua Kissoon Feb 27 '12 at 5:49
  function dob ($birthday){
    list($day,$month,$year) = explode("/",$birthday);
    $year_diff  = date("Y") - $year;
    $month_diff = date("m") - $month;
    $day_diff   = date("d") - $day;
    if ($day_diff < 0 || $month_diff < 0)
      $year_diff--;
    return $year_diff;
  }
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Seems ok on some dates but for others it returns nothing, presumably if the IF is not met? –  stef Sep 23 '10 at 9:07
    
Nevermind, my bad. Seems ok! –  stef Sep 23 '10 at 9:13
$tz  = new DateTimeZone('Europe/Brussels');
$age = DateTime::createFromFormat('d/m/Y', '12/02/1973', $tz)
     ->diff(new DateTime('now', $tz))
     ->y;

As of PHP 5.3.0 you can use the handy DateTime::createFromFormat to ensure that your date does not get mistaken for m/d/Y format and the DateInterval class (via DateTime::diff) to get the number of years between now and the target date.

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1  
Looks promising, but unfortunately most of server hosting in my country still use PHP 5.2.x :( –  GusDeCooL Aug 14 '11 at 17:05
    
Works great, thanks! –  Nick Jun 13 '12 at 18:40

If you don't need great precision, just the number of years, you could consider using the code below ...

 print floor((time() - strtotime("1971-11-20")) / (60*60*24*365));

You only need to put this into a function and replace the date "1971-11-20" with a variable.

Please note that precision of the code above is not high because of the leap years, i.e. about every 4 years the days are 366 instead of 365. The expression 60*60*24*365 calculates the number of seconds in one year - you can replace it with 31536000.

Another important thing is that because of the use of UNUX Timestamp it has both the Year 1901 and Year 2038 problem which means the the expression above will not work correctly for dates before year 1901 and after year 2038.

If you can live with the limitations mentioned above that code should work for you.

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$birthday_timestamp = strtotime('1988-12-10');  

// Calculates age correctly
// Just need birthday in timestamp
$age = date('md', $birthday_timestamp) > date('md') ? date('Y') - date('Y', $birthday_timestamp) - 1 : date('Y') - date('Y', $birthday_timestamp);
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I have found this script reliable. It takes the date format as YYYY-mm-dd, but it could be modified for other formats pretty easily.

/*
* Get age from dob
* @param        dob      string       The dob to validate in mysql format (yyyy-mm-dd)
* @return            integer      The age in years as of the current date
*/
function getAge($dob) {
    //calculate years of age (input string: YYYY-MM-DD)
    list($year, $month, $day) = explode("-", $dob);

    $year_diff  = date("Y") - $year;
    $month_diff = date("m") - $month;
    $day_diff   = date("d") - $day;

    if ($day_diff < 0 || $month_diff < 0)
        $year_diff--;

    return $year_diff;
}
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2  
Please some detail of how will this be helpful. Just pasting a function is not a correct way to answer. –  Starx Nov 8 '12 at 14:40

Figured I'd throw this on here since this seems to be most popular form of this question.

I ran a 100 year comparison on 3 of the most popular types of age funcs i could find for PHP and posted my results (as well as the functions) to my blog.

As you can see there, all 3 funcs preform well with just a slight difference on the 2nd function. My suggestion based on my results is to use the 3rd function unless you want to do something specific on a person's birthday, in which case the 1st function provides a simple way to do exactly that.

My suggestion after my 100 year review:

//  param is any string that will work for strtotime: exp. YYYY-MM-DD; m/d/y; d-m-y
function getAge_3($date) {
    return intval(substr(date('Ymd') - date('Ymd', strtotime($date)), 0, -4));
}

See BLOG


A key note about the strtotime method:

Note:

Dates in the m/d/y or d-m-y formats are disambiguated by looking at the separator 
between the various components: if the separator is a slash (/), then the 
American m/d/y is assumed; whereas if the separator is a dash (-) or a dot (.), 
then the European d-m-y format is assumed.

To avoid potential ambiguity, it's best to use ISO 8601 (YYYY-MM-DD) dates or 
DateTime::createFromFormat() when possible.
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If you want to caculate the Age of using the dob, you can also use this function. It uses the DateTime object.

function calcutateAge($dob){

        $dob = date("Y-m-d",strtotime($dob));

        $dobObject = new DateTime($dob);
        $nowObject = new DateTime();

        $diff = $dobObject->diff($nowObject);

        return $diff->y;

}
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Doesn't work on php 5.2 –  qasimzee May 24 at 8:31

If you can't seem to use some of the newer functions, here's something I whipped up. Probably more than you need, and I'm sure there are better ways, but it's easy to read, so it should do the job:

function get_age($date, $units='years')
{
    $modifier = date('n') - date('n', strtotime($date)) ? 1 : (date('j') - date('j', strtotime($date)) ? 1 : 0);
    $seconds = (time()-strtotime($date));
    $years = (date('Y')-date('Y', strtotime($date))-$modifier);
    switch($units)
    {
        case 'seconds':
            return $seconds;
        case 'minutes':
            return round($seconds/60);
        case 'hours':
            return round($seconds/60/60);
        case 'days':
            return round($seconds/60/60/24);
        case 'months':
            return ($years*12+date('n'));
        case 'decades':
            return ($years/10);
        case 'centuries':
            return ($years/100);
        case 'years':
        default:
            return $years;
    }
}

Example Use:

echo 'I am '.get_age('September 19th, 1984', 'days').' days old';

Hope this helps.

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Due to leap year, it is not wise just to subtract one date from another and floor it to number of years. To calculate the age like the humans, you will need something like this:

$birthday_date = '1977-04-01';
$age = date('Y') - substr($birthday_date, 0, 4);
if (strtotime(date('Y-m-d')) - strtotime(date('Y') . substr($birthday_date, 4, 6)) < 0)
{
    $age--;
}
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Simple method for calculating Age from dob:

$_age = floor( (strtotime(date('Y-m-d')) - strtotime('1986-09-16')) / 31556926);
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9  
excessive use of functions... $_age = floor((time() - strtotime('1986-09-16')) / 31556926); –  Robert M. Aug 1 '13 at 16:30
    
Best solution ... 1 liner, simple and avoid to use: mktime –  Timmy Mar 3 at 15:12

The following works great for me and seems to be a lot simpler than the examples that have already been given.

$dob_date = "01";
$dob_month = "01";
$dob_year = "1970";
$year = gmdate("Y");
$month = gmdate("m");
$day = gmdate("d");
$age = $year-$dob_year; // $age calculates the user's age determined by only the year
if($month < $dob_month) { // this checks if the current month is before the user's month of birth
  $age = $age-1;
} else if($month == $dob_month && $day >= $dob_date) { // this checks if the current month is the same as the user's month of birth and then checks if it is the user's birthday or if it is after it
  $age = $age;
} else if($month == $dob_month && $day < $dob_date) { //this checks if the current month is the user's month of birth and checks if it before the user's birthday
  $age = $age-1;
} else {
  $age = $age;
}

I've tested and actively use this code, it might seem a little cumbersome but it is very simple to use and edit and is quite accurate.

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i18n :

function getAge($birthdate, $pattern = 'eu')
{
    $patterns = array(
        'eu'    => 'd/m/Y',
        'mysql' => 'Y-m-d',
        'us'    => 'm/d/Y',
    );

    $now      = new DateTime();
    $in       = DateTime::createFromFormat($patterns[$pattern], $birthdate);
    $interval = $now->diff($in);
    return $interval->y;
}

// Usage
echo getAge('05/29/1984', 'us');
// return 28
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Following the first logic, you have to use = in the comparison.

<?php 
    function age($birthdate) {
        $birthdate = strtotime($birthdate);
        $now = time();
        $age = 0;
        while ($now >= ($birthdate = strtotime("+1 YEAR", $birthdate))) {
            $age++;
        }
        return $age;
    }

    // Usage:

    echo age(implode("-",array_reverse(explode("/",'14/09/1986')))); // format yyyy-mm-dd is safe!
    echo age("-10 YEARS") // without = in the comparison, will returns 9.

?>
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This function works fine. It's a slight imporvement of the code of Parkyprg

function age($birthday){
 list($day,$month,$year) = explode("/",$birthday);
 $year_diff  = date("Y") - $year;
 $month_diff = date("m") - $month;
 $day_diff   = date("d") - $day;
 if ($day_diff < 0 && $month_diff==0){$year_diff--;}
 if ($day_diff < 0 && $month_diff < 0){$year_diff--;}
 return $year_diff;
}
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It is a problem when you use strtotime with DD/MM/YYYY. You cant use that format. Instead of it you can use MM/DD/YYYY (or many others like YYYYMMDD or YYYY-MM-DD) and it should work properly.

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I use Date/Time for this:

$age = date_diff(date_create($bdate), date_create('now'))->y;
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You can use something like this for british style date formats: $age = date_diff(date_create(str_replace('/', '.', $bdate)), date_create('now'))->y; because of stackoverflow.com/questions/4163641/… –  Richard Mar 10 at 20:37
    
This is by far the most elegant solution given to the question. –  Samyoul Mar 31 at 20:24

How about launching this query and having MySQL calculating it for you:

SELECT 
username
,date_of_birth
,(PERIOD_DIFF( DATE_FORMAT(CURDATE(), '%Y%m') , DATE_FORMAT(date_of_birth, '%Y%m') )) DIV 12 AS years
,(PERIOD_DIFF( DATE_FORMAT(CURDATE(), '%Y%m') , DATE_FORMAT(date_of_birth, '%Y%m') )) MOD 12 AS months
FROM users

Result:

r2d2, 1986-12-23 00:00:00, 27 , 6 

The user has 27 years and 6 months (it counts an entire month)

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This is actually a good solution for folks on pre-5.3 versions of PHP that don't have access to date_diff and the like. –  strangerstudios Jul 1 at 18:47

Looking over the provided solutions I'm always think about drawbacks of modern education in IT field. Most of the developers are forgetting that even modern CPU's suffer from executing conditional operators, while arithmetics operations, especially with powers of 2 are faster. So on the purpose I'm showing this solution in PHP thread without any optimizations:

  list($year,$month,$day) = explode("-",$birthday);
  $age=floor(((date("Y")-$year)*512+(date("m")-$month)*32+date("d")-$day)/512);

In other languages which have strict type definitions and capable replacing * and / by shifts, this formula will "fly". Also changing divisor you can calculate age in months, weeks &etc. Be carefull, the order of operands in differences is essential

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this is my function to calculating DOB with the specific return of age by year, month, and day

function ageDOB($y=2014,$m=12,$d=31){ /* $y = year, $m = month, $d = day */
date_default_timezone_set("Asia/Jakarta"); /* can change with others time zone */

$ageY = date("Y")-intval($y);
$ageM = date("n")-intval($m);
$ageD = date("j")-intval($d);

if ($ageD < 0){
    $ageD = $ageD += date("t");
    $ageM--;
    }
if ($ageM < 0){
    $ageM+=12;
    $ageY--;
    }
if ($ageY < 0){ $ageD = $ageM = $ageY = -1; }
return array( 'y'=>$ageY, 'm'=>$ageM, 'd'=>$ageD );
}

this how to use it

$age = ageDOB(1984,5,8); /* with my local time is 2014-07-01 */
echo sprintf("age = %d years %d months %d days",$age['y'],$age['m'],$age['d']); /* output -> age = 29 year 1 month 24 day */
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