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I am trying to calculate how old is a person in a database.
Let's suppose to have this simple table:

student(id, birth_date);

Where id is the primary key (truly the table is more complex but I have simplified it).
I want to get how much old is a single person:

select id, datediff(curdate(),birth_date) 
from student

But it returns a result in days, and not in years.I could divide it by 365:

select id, datediff(curdate(),birth_date) / 365
from student

But it return a floating point value, and I want an integer.
So I could calculate the years:

select id, year(curdate())-year(birth_date) 
from student

But there is a problem: for instance now is May, if a person war born in June, 1970 he has still 31 years and not 32, but the expression returns 32.
I can't come out of this problem, can someone help me?

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7 Answers 7

up vote 4 down vote accepted
select id, floor(datediff(curdate(),birth_date) / 365)
from student

What about flooring the result to be an integer?

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Why not use MySQL's FLOOR() function on the output from your second approach? Any fractions will be dropped, giving you the result you want.

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Try:

SELECT 
  DATE_FORMAT(FROM_DAYS(TO_DAYS(NOW())-TO_DAYS(birth_date)), '%Y')+0
  AS age FROM student;
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You can use this to get integer value.

select id, CAST(datediff(curdate(),birth_date) / 365 as int)
from student

If you want to read about CONVERT() and CAST() here is the link.

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The accepted answer is almost correct, but can lead to wrong results.

In fact, / 365 doesn't take into consideration leap years, and can lead to falsy results if you compare a date that has the same day&month than the birthdate.

In order to be more accurate, you have to divide it by the average days in years for 4 years, aka (365 * 4) + 1 (the leap year every 4 years) => 365.25

And you will be more accurate :

select id, floor(datediff(curdate(),birth_date) / 365.25) from student

Tested for one of my project and it's working.

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Isn't datediff(curdate(),birth_date casted to a floating point? –  Ramy Al Zuhouri Dec 21 '12 at 12:34
    
I couldn't say for sure, but I tested it, and /365 returned a different (false) result than ` / 365.25` indicated here. –  Cyril N. Dec 21 '12 at 13:31
    
Yeah but shouldn't I cut the result with a function like floor? I could get a non-integer age. –  Ramy Al Zuhouri Dec 21 '12 at 13:45
1  
I'm not sure to understand here. floor returns a BigInt, not a floating value. datediff returns an int, divised by a float, but rounded to the lower int. –  Cyril N. Dec 21 '12 at 13:50

For anyone who comes across this:

another way this can be done is:

SELECT TIMESTAMPDIFF(YEAR, date_of_birth, CURDATE()) AS difference FROM student

For differences in months, replace YEAR with MONTH, and for days replace YEAR with DAY

Hope that helps!

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I'd suggest this:

DATE_FORMAT(NOW(),"%Y")
   -DATE_FORMAT(BirthDate,'%Y')
   -(
     IF(
      DATE_FORMAT(NOW(),"%m-%d") < DATE_FORMAT(BrthDate,'%m-%d'),
      1,
      0
     )
    ) as Age

This should work with leap-years very well ;-)

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