Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Apologies if this is a really simple question but I am interested in trying to reach an accurate answer and not just a "rounded" up answer.

My problem is: I know somebody is 27.12 on the 18th of March 2008 (random example). How can I calculate, to the nearest approximation, his date of birth. Age is always provided as a real number to two decimal points.

share|improve this question

4 Answers 4

up vote 0 down vote accepted

eumiro's answer does the trick; the following, using the Time::Piece module (bundled with Perl since 5.10) is perhaps more maintainable.

use strict;
use warnings;
use 5.010;

use Time::Piece;
use Time::Seconds;

my ($date, $age) = ('2008-03-18', 27.12);

my $birthday = Time::Piece->strptime($date, '%Y-%m-%d') - $age*ONE_YEAR;
say $birthday->ymd();

This will get you within a few days of the actual birthday, due to the lack of accuracy (1/100 year) in the age.

share|improve this answer

The solutions through simple fractional calculation are 1981-02-03 and the day before, due to rounding. As eumiro said, the resolution of 1/100 year is not precise enough, so it might still be off a day or two with the real date.

use DateTime qw();
use POSIX qw(modf);

my $date = DateTime->new(year => 2008, month => 3, day => 18);    # 2008-03-18
my $age = 27.12;                                                  # 27.12
my ($days, $years) = modf $age;                                   # (0.12, 27)
$days *= 365.25;                                                  # 43.83
# approx. number of days in a year, is accurate enough for this purpose

$date->clone->subtract(years => $years, days => $days);        # 1981-02-03
$date->clone->subtract(years => $years, days => 1 + $days);    # 1981-02-02
share|improve this answer
use strict;
use Time::Local;

my $now = timelocal(0, 0, 12, 18, 3-1, 2008);
my $birthday = $now - 27.12 * 365.25 * 86400;
print scalar localtime $birthday;

returns Mon Feb 2 22:04:48 1981.

Your precision is 0.01 year, which is roughly 3 days, so you even cannot cover all birthdays.

My method does not cover leap years very well, but you cannot really calculate exactly with them. Imagine the 01-March-2008. What date was "1 year and 1 day" before this date? 28-February-2007 or the not existing 29-February-2007?

share|improve this answer
    
-1 for forgetting leap days –  daxim Jan 25 '11 at 12:30
    
You should still use something more accurate than 365 days in a year. (365.25 or 365.2475 will do.) That way the answer will never be more than a few days off (due to rounding of the age). Yours is about a week off. –  mscha Jan 25 '11 at 12:32
    
@daxim - not forgetting - I have explained why you cannot calculate them exactly. –  eumiro Jan 25 '11 at 12:44
    
@mscha - I have updated the 365 with 365.25, but it is still tricky with leap years. –  eumiro Jan 25 '11 at 12:46

A method that permits greater accuracy simply takes advantage of existing MySQL Date/Time functions. If working inside the MySQL, you can calculate the age with great precision by converting each of two dates to seconds in the TO_SECONDS() conversion and then manipulating the results to the desired precision. In these cases, the dates are in 'yyyy-mm-dd hh:mm:ss' formats and a year is assumed to have mean length of 365.242 days.

ROUND((TO_SECONDS(AnyDateTime) - TO_SECONDS(DateOfBirth))/(365.242*60*60*24),3) as age, e.g.:

    ROUND((TOSECONDS('2013-01-01 00:00:00') - TO_SECONDS('1942-10-16')/(365.242*60*60*24),3) as AGE -->  70.214

Alternatively you can use the DATEDIFF() conversion which provides the answer in days:

    ROUND(DATEDIFF('2013-01-01 00:00:00','1942-10-16')/365.242,3) AS age -->  70.214
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.