I have a table of users in sql and they each have birth dates. I want to convert their date of birth to their age (years only), e.g. date: 15.03.1999 age: 14 and 15.03.2014 will change to age: 15

Here I want to show the date of the user:

if(isset($_GET['id']))
{
    $id = intval($_GET['id']);
    $dnn = mysql_fetch_array($dn);
    $dn = mysql_query('select username, email, skype, avatar, ' .
        'date, signup_date, gender from users where id="'.$id.'"');
    $dnn = mysql_fetch_array($dn);
    echo "{$dnn['date']}";
}
  • possible duplicate of Calculate Age in MySQL (InnoDb) – John Conde Oct 22 '13 at 14:49
  • presumably your dates are stored using a date data type? – Strawberry Oct 22 '13 at 14:49
  • 2
    there are plenty of 'calculate age' answers out there. Google is a mighty tool! But by the way: Don't use mysql_* functions. Use PDO or MySQLi – Patrick Manser Oct 22 '13 at 14:49
  • Get current date/time and subtract the converted one from database...then convert it back to number of years, use strtotime() and date() with proper formatting. – bodi0 Oct 22 '13 at 14:50
  • Isn't it amazing that no one's ever had to do this before. – Strawberry Dec 30 '13 at 11:28

10 Answers 10

up vote 167 down vote accepted

PHP >= 5.3.0

# object oriented
$from = new DateTime('1970-02-01');
$to   = new DateTime('today');
echo $from->diff($to)->y;

# procedural
echo date_diff(date_create('1970-02-01'), date_create('today'))->y;

demo

functions: date_create(), date_diff()


MySQL >= 5.0.0

SELECT TIMESTAMPDIFF(YEAR, '1970-02-01', CURDATE()) AS age

demo

functions: TIMESTAMPDIFF(), CURDATE()

  • Fatal error: Call to undefined function date_diff() in – PHPupil Oct 22 '13 at 14:57
  • @PHPupil: date_diff is for PHP version >= 5.3.0. – Glavić Oct 22 '13 at 15:07
  • @PHPupil: upgrade PHP? ;) or use MySQL solution. – Glavić Oct 22 '13 at 15:11
  • This wouldn't work for dob's that are under 1 years old... showing 0 is not necessarily ideal for age – Ryman Holmes Apr 6 '14 at 15:14
  • 4
    @RymanHolmes: if you need to show 1 year old, instead of 0, show it. One simple if statement solves this. Where is the problem? – Glavić Apr 6 '14 at 20:01

Very small code to get Age:

<?php
    $dob='1981-10-07';
    $diff = (date('Y') - date('Y',strtotime($dob)));
    echo $diff;
?>

//output 35
  • 3
    How did this get 11 votes? A person's age depends on the day and month of the year as well. – Nick Bedford Jun 28 '17 at 4:31
  • Your method is incorrect if person have DOB ex. 13-10-1991 and current month is July then the age is 27 which is wrong. The person age is 26 till the current month is equal to or greater then the DOB month. – Shaan Ansari Oct 1 at 6:56

Got this script from net (thanks to coffeecupweb)

<?php
/**
 * Simple PHP age Calculator
 * 
 * Calculate and returns age based on the date provided by the user.
 * @param   date of birth('Format:yyyy-mm-dd').
 * @return  age based on date of birth
 */
function ageCalculator($dob){
    if(!empty($dob)){
        $birthdate = new DateTime($dob);
        $today   = new DateTime('today');
        $age = $birthdate->diff($today)->y;
        return $age;
    }else{
        return 0;
    }
}
$dob = '1992-03-18';
echo ageCalculator($dob);
?>

Reference Link http://www.calculator.net/age-calculator.html

$hours_in_day   = 24;
$minutes_in_hour= 60;
$seconds_in_mins= 60;

$birth_date     = new DateTime("1988-07-31T00:00:00");
$current_date   = new DateTime();

$diff           = $birth_date->diff($current_date);

echo $years     = $diff->y . " years " . $diff->m . " months " . $diff->d . " day(s)"; echo "<br/>";
echo $months    = ($diff->y * 12) + $diff->m . " months " . $diff->d . " day(s)"; echo "<br/>";
echo $weeks     = floor($diff->days/7) . " weeks " . $diff->d%7 . " day(s)"; echo "<br/>";
echo $days      = $diff->days . " days"; echo "<br/>";
echo $hours     = $diff->h + ($diff->days * $hours_in_day) . " hours"; echo "<br/>";
echo $mins      = $diff->h + ($diff->days * $hours_in_day * $minutes_in_hour) . " minutest"; echo "<br/>";
echo $seconds   = $diff->h + ($diff->days * $hours_in_day * $minutes_in_hour * $seconds_in_mins) . " seconds"; echo "<br/>";

For a birthday date with format Date/Month/Year

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;
}

or the same function that accepts day, month, year as parameters :

function age($day, $month, $year){
 $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;
}

You can use it like this :

echo age("20/01/2000");

which will output the correct age (On 4 June, it's 14).

 $dob = $this->dateOfBirth; //Datetime 
        $currentDate = new \DateTime();
        $dateDiff = $dob->diff($currentDate);
        $years = $dateDiff->y;
        $months = $dateDiff->m;
        $days = $dateDiff->d;
        $age = $years .' Year(s)';

        if($years === 0) {
            $age = $months .' Month(s)';
            if($months === 0) {
                $age = $days .' Day(s)';
            }
        }
        return $age;

declare @dateOfBirth date select @dateOfBirth = '2000-01-01'

SELECT datediff(YEAR,@dateOfBirth,getdate()) as Age

To Calculate age from Date of birth.

$dob = '1991-09-30';
(((int) date("m",strtotime($dob)) >= (int) date('m')) && ((int) date("d",strtotime($dob)) >= (int) date('d'))) 

    ? 
    $age = (date('Y') - date('Y',strtotime($dob))) 
    :  
    $age = (date('Y') - date('Y',strtotime($dob)))-1;

OUTPUT: 26

I hope you will find this useful.

$query1="SELECT TIMESTAMPDIFF (YEAR, YOUR_DOB_COLUMN, CURDATE()) AS age FROM your_table WHERE id='$user_id'";
$res1=mysql_query($query1);
$row=mysql_fetch_array($res1);
echo $row['age'];

There is a simple way to find the date from any birthdate by using substr of PHP

$birth_date = '15.03.2014';
$date = substr($birth_date, 0, 2);
echo $date;

Which will just simply give you the output date of that birth date.

In this case, that will be 15.

See substr of PHP for more...

  • The question asks for the age, not the 2-digit year someone was born in. – Martijn Pieters Oct 1 at 8:31

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