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How to calculate age (in years) based on Date of Birth and getDate()

I'm trying to echo a persons age from their date of birth which is stored in mysql table. is there a piece of code i can put in?

At the moment it just displays the date of birth, because that's all i've asked it to do but i would like a way of showing the age instead if this is possible.

Here's the while loop in users.php:


            $platinum_set = get_platinum_user();
            while ($platinum = mysql_fetch_array($platinum_set)) {
                <div class=\"platinumcase\">
                <a href=\"profile.php?id={$platinum['id']}\"><img width=80px height= 80px src=\"data/photos/{$platinum['id']}/_default.jpg\" class=\"boxgrid\"/></a><h58> {$platinum['first_name']} {$platinum['last_name']}</h58><br/><br/>



Here's the function:

function get_platinum_user() {
            global $connection;
            $query = "SELECT *
                        FROM ptb_users, ptb_profiles
                        WHERE ptb_users.account_type = \"User\"
                        AND ptb_users.account_status = \"Active\"
                        AND ptb_profiles.user_id =
                        AND ptb_users.subscription = \"Platinum\"
                        LIMIT 0 , 30";
            $platinum_set = mysql_query($query, $connection);
            return $platinum_set;
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marked as duplicate by ManseUK, hakre, tereško, Marlin Pierce, Denys Séguret Nov 5 '12 at 21:30

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

So calculate the age. What have you tried? – lc. Nov 5 '12 at 17:55
i've tried this in the while loop but it doesn't work, still shows date of birth: – Dave Smith Nov 5 '12 at 17:57
$dob = $platinum['dob']; function age_from_dob($dob) { list($y,$m,$d) = explode('-', $dob); if (($m = (date('m') - $m)) < 0) { $y++; } elseif ($m == 0 && date('d') - $d < 0) { $y++; } return date('Y') - $y; } $dob = age_from_dob($dob); ?> – Dave Smith Nov 5 '12 at 17:57
Manseuk not a duplicate because his question was 'How to calculate age (in years) based on Date of Birth and get Date()' mines 'get age from date of birth' without the date. – Dave Smith Nov 5 '12 at 17:59 - just search for age. And if you have no clue what column names in SQL are, just remove the * from your query and try to get the result columns without it as an exercise.… – hakre Nov 5 '12 at 18:00

4 Answers 4

You could use something like

(time() - strtotime($platinum['dob'])) to get the number of seconds

once you have this value, convert it into years based on which year is a leap year etc.

From this example from Stackoverflow Seconds to Year

you can make a function which calculates the number of years

$x = strtotime( $platinum['dob']) );

$sy = 31536000  // seconds a non leap year
$sb = 126230400  // seconds a block of 3 non leap years and one that is

$actual_year = (floor((($x + $sy) / $sb)) + 492) * 4 + 
              (min(floor((($x + $sy) % $sb) / $sy) + 1, 4));
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let the person's DOB be d1/m1/y1, and the today's date be d2/m2/y2,


$y = $y2 - $y1;
$m = $m2 - $m1;
$d = $d2 - $d1;

if($m>0) {$age=$y}

else if($m<0) {$age=$y-1}

else if($d>0) {$age=$y}

else if($d<0) {$age=$y-1}
else{echo 'happy birthday!'}
share|improve this answer
-1. hideously painful when there's far far easier methods available. – Marc B Nov 5 '12 at 18:09
but this algorithm still serves the purpose @marc b – Peeyush Kushwaha Nov 5 '12 at 18:13
SELECT DATE_FORMAT(NOW(), '%Y') - DATE_FORMAT(dob, '%Y') - (DATE_FORMAT(NOW(), '00-%m-%d') < DATE_FORMAT(dob, '00-%m-%d')) AS age

Works since ages. Your Mysql version is likely to be supported - are you using Mysql at all?

Then you might also create a function, I found it on the manual page of Mysql Date and Time functions, the place to visit for date and time related stuff for your database:

COMMENT 'Given birthdate, returns current age'
RETURN YEAR(NOW()) - YEAR(_d) - IF(DATE_FORMAT(_d, '%c%d') > DATE_FORMAT(NOW(), '%c%d'), 1, 0);

It first of all substracts the years between now and the date and then it checks if the day of month is before or after now and handles it accordingly. I would say this is pretty straight forward. Naturally you cold do that as in PHP with the same logic.

If you don't store dob as datetime, help yourself to convert it to datetime before passing it to the function:

SELECT *, age(dob) AS age FROM ....

you will find it inside the resultset under the name age then, like $platinum['age'] in case you had problems with that.

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SELECT YEAR(now()) - YEAR(birth_date) - (DAYOFYEAR(now()) <= DAYOFYEAR(birth_date)) AS age


birth_day = 2005-04-03   (bday already occured this year)
now = 2012-11-05

    2012 - 2005 - (310 <= 93)
    7 - (false aka 0)

birth_day = 2005-11-06 (bday hasn't occured yet this year)
now = 2012-11-05

    2012 - 2005 - (309 <= 310)
    7 - (true aka 1)
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