80

If I have a persons date of birth stored in a table in the form dd-mm-yyyy and I subtract it from the current date, what format is the date returned in?

How can I use this returned format to calculate someone's age?

3
  • 5
    What RDBMS is this for? Date Functions aren't that well standardised AFAIK. And what do you mean stored in the format dd-mm-yyyy? if it is of date datatype it will likely be stored in a numeric format (e.g. as an integer with days since some start point) Apr 24, 2011 at 21:47
  • Hi I am using InnoDb with phpMyAdmin....It is stored as a date variable. I think it is yyyymmdd - made mistake above
    – user559142
    Apr 24, 2011 at 22:06
  • If data is stored as a DATE or DATETIME data type, it is stored as a binary value, NOT in any particular human-readable format. Formatting only happens on output to text, and is dependent on factors like OS locale setting, or explicit format instructions provided by you. To the extent possible, process DATE and DATETIME values with functions that expect DATE and DATETIME type values. Then you don't have problems with date format. You MIGHT still need to mess with timezone, but at least then your calc is just a little off rather than completely broken.
    – gwideman
    Jul 29, 2014 at 9:14

13 Answers 13

288

You can use TIMESTAMPDIFF(unit, datetime_expr1, datetime_expr2) function:

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

Demo

4
  • 16
    Small, precise and easy solution.
    – user2377782
    Mar 25, 2014 at 0:10
  • 4
    This seems like the clear winner. I don't know why anyone bothers with the complicated and goof-prone methods converting dates to strings etc.
    – gwideman
    Jul 29, 2014 at 8:56
  • 3
    Best solution, but hard to find so at the end of this page. Apr 20, 2016 at 7:31
  • 1
    @ErikvandeVen order the answers by votes, not oldest Jan 27, 2019 at 21:04
67

If the value is stored as a DATETIME data type:

SELECT YEAR(CURRENT_TIMESTAMP) - YEAR(dob) - (RIGHT(CURRENT_TIMESTAMP, 5) < RIGHT(dob, 5)) as age 
  FROM YOUR_TABLE

Less precise when you consider leap years:

SELECT DATEDIFF(CURRENT_DATE, STR_TO_DATE(t.birthday, '%d-%m-%Y'))/365 AS ageInYears
  FROM YOUR_TABLE t 
9
  • ... /365.25 to handle leap-years. But in the year 2000, the leap year was skipped. But if you can live with an error of 1 day. Apr 24, 2011 at 22:36
  • 43
    There is a correct answer in the official MySQL documentation: dev.mysql.com/doc/refman/5.0/en/date-calculations.html
    – mojuba
    Jan 23, 2013 at 1:35
  • @mojuba: That's a different way, not necessarily correct -- I don't think the OP would've marked this as the answer if it wasn't satisfactory. I'd appreciate it if you're reverse your downvote in light of that, and that the question is almost two years old.
    – OMG Ponies
    Jan 23, 2013 at 4:44
  • 4
    @OMG Ponies I'm sorry but an assumption that there are 365 days in a year can never give correct age calculation. For a 40 year old person, for example, you will be giving a wrong age during 10 days after the person's birthday.
    – mojuba
    Jan 23, 2013 at 15:17
  • 1
    @OMG Ponies No, no and no. The error in your formula is approx age/4, because that's the number of leap years (which is the number of unaccounted-for extra days) in your formula. Try this to verify: timeanddate.com/date/duration.html
    – mojuba
    Jan 24, 2013 at 8:07
13
select *,year(curdate())-year(dob) - (right(curdate(),5) < right(dob,5)) as age from your_table

in this way you consider even month and day of birth in order to have a more accurate age calculation.

4
  • Wow this works great - can you explain to me what the - (right(curdate(),5) < right(dob,5)) part does?
    – user559142
    Apr 24, 2011 at 22:26
  • Yes. Right(...,5) extracts mm-dd from current date and from date of birth. You compare them with "<" symbol that returns 0 if day and month of date of birth are less than current date, 1 otherwise. So you can subtract it (0 or 1) from year difference. Apr 24, 2011 at 22:31
  • 1
    I would make one big modification. On my MySQL right(dob,5) return the hours-minutes section of the date. This would be fixed by using year(curdate())-year(dob) - (dayofyear(curdate()) < dayofyear(dob)) as age, and I feel dayofyear is more elegant.
    – regilero
    Mar 1, 2013 at 11:52
  • And of course this all fails if dob happens to be stored as a datetime. Just use TIMESTAMPDIFF()
    – gwideman
    Jul 29, 2014 at 8:58
13
SELECT TIMESTAMPDIFF (YEAR, YOUR_COLUMN, CURDATE()) FROM YOUR_TABLE AS AGE

Check the demo image below

sql time difference example

Simple but elegant..

5
select floor(datediff (now(), birthday)/365) as age
2
  • Sorry..just fixed it. He can use floor or ceil based on the requirement. Apr 24, 2011 at 22:22
  • 1
    Yes, it wont work for that level of accuracy if thats what OP wants. However, you'd need to have 365 leap years to make 1 year of difference in age, no? Apr 24, 2011 at 22:28
2

Simply:

DATE_FORMAT(FROM_DAYS(TO_DAYS(NOW())-TO_DAYS(`birthDate`)), '%Y')+0 AS age
1
  • Not simple compared to TIMESTAMPDIFF()
    – gwideman
    Jul 29, 2014 at 8:56
1

Try this:

SET @birthday = CAST('1980-05-01' AS DATE);
SET @today = CURRENT_DATE();

SELECT YEAR(@today) - YEAR(@birthday) - 
  (CASE WHEN
    MONTH(@birthday) > MONTH(@today) OR 
    (MONTH(@birthday) = MONTH(@today) AND DAY(@birthday) > DAY(@today)) 
      THEN 1 
      ELSE 0 
  END);

It returns this year - birth year (how old the person will be this year after the birthday) and adjusts based on whether the person has had the birthday yet this year.

It doesn't suffer from the rounding errors of other methods presented here.

Freely adapted from here

1

Since the question is being tagged for mysql, I have the following implementation that works for me and I hope similar alternatives would be there for other RDBMS's. Here's the sql:

select YEAR(now()) - YEAR(dob) - ( DAYOFYEAR(now()) < DAYOFYEAR(dob) ) as age 
from table 
where ...
1

Simply do

SELECT birthdate, (YEAR(CURDATE())-YEAR(birthdate)) AS age FROM `member` 

birthdate is field name that keep birthdate name take CURDATE() turn to year by YEAR() command minus with YEAR() from the birthdate field

1
  • 1
    if you do not take in mind the month and day, the number might have a difference of one year with the real age
    – Juan
    Mar 22, 2019 at 11:20
0

This is how to calculate the age in MySQL:

select
  date_format(now(), '%Y') - date_format(date_of_birth, '%Y') - 
  (date_format(now(), '00-%m-%d') < date_format(date_of_birth, '00-%m-%d'))
as age from table
0
0

You can make a function to do it:

drop function if exists getIdade;

delimiter |

create function getIdade( data_nascimento datetime )
returns int
begin
    declare idade int;
    declare ano_atual int;
    declare mes_atual int;
    declare dia_atual int;
    declare ano int;
    declare mes int;
    declare dia int;

    set ano_atual = year(curdate());
    set mes_atual = month( curdate());
    set dia_atual = day( curdate());

    set ano = year( data_nascimento );
    set mes = month( data_nascimento );
    set dia = day( data_nascimento );

    set idade = ano_atual - ano;

    if( mes > mes_atual ) then
            set idade = idade - 1;
    end if;

    if( mes = mes_atual and dia > dia_atual ) then
            set idade = idade - 1;
    end if;

    return idade;
end|

delimiter ;

Now, you can get the age from a date:

select getIdade('1983-09-16');

If you date is in format Y-m-d H:i:s, you can do this:

select getIdade(substring_index('1983-09-16 23:43:01', ' ', 1));

You can reuse this function anywhere ;)

1
  • 2
    Definitely the way to go if you're paid by lines of code :-).
    – gwideman
    Jul 29, 2014 at 9:00
0

I prefer use a function this way.

DELIMITER $$ DROP FUNCTION IF EXISTS `db`.`F_AGE` $$
    CREATE FUNCTION `F_AGE`(in_dob datetime) RETURNS int(11)
        NO SQL
    BEGIN
       DECLARE l_age INT;
       IF DATE_FORMAT(NOW(  ),'00-%m-%d') >= DATE_FORMAT(in_dob,'00-%m-%d') THEN
          -- This person has had a birthday this year
          SET l_age=DATE_FORMAT(NOW(  ),'%Y')-DATE_FORMAT(in_dob,'%Y');
        ELSE
          -- Yet to have a birthday this year
          SET l_age=DATE_FORMAT(NOW(  ),'%Y')-DATE_FORMAT(in_dob,'%Y')-1;
       END IF;
       RETURN(l_age);
    END $$

    DELIMITER ;

now to use

SELECT F_AGE('1979-02-11') AS AGE; 

OR

SELECT F_AGE(date) AS age FROM table;
0

There is two simples ways to do that :

1-

select("users.birthdate",
            DB::raw("FLOOR(DATEDIFF(CURRENT_DATE, STR_TO_DATE(users.birthdate, '%Y-%m-%d'))/365) AS age_way_one"),

2-

select("users.birthdate",DB::raw("(YEAR(CURDATE())-YEAR(users.birthdate)) AS age_way_two"))

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