227

I have a table listing people along with their date of birth (currently a nvarchar(25))

How can I convert that to a date, and then calculate their age in years?

My data looks as follows

ID    Name   DOB
1     John   1992-01-09 00:00:00
2     Sally  1959-05-20 00:00:00

I would like to see:

ID    Name   AGE  DOB
1     John   17   1992-01-09 00:00:00
2     Sally  50   1959-05-20 00:00:00
5
  • 17
    Why are you storing date values as strings using nvarchar(25) instead of using the database's native date or datetime type?
    – Jesper
    Oct 15, 2009 at 12:44
  • The question is tagged 2005 not 2008 so the native 'Date' type isn't available, but definately a datetime, and it could be argued SmallDateTime since you do not need the accuracy.
    – Andrew
    Oct 15, 2009 at 12:55
  • Hi, the reason for keeping dates as varchar is because I'm importing this from a non-SQL server schema, there were some issues importing them as datetime (and the other date formats) and varchar converted ok
    – Jimmy
    Oct 15, 2009 at 13:12
  • 7
    @James.Elsey, so you had issues importing and as a result are all the dates valid? can never be sure unless you use a datetime or smalldatetime, with varchar, you may get your import to work, but have other problems down the line. Also, I'd never store the age, it changes each day, use a View
    – KM.
    Oct 15, 2009 at 13:38
  • @KM Yes there was an issue importing that data as a date, the only viable solution at the time was to import them as nvarchars. This select is going to be part of a nightly job so storing the age should not be an issue
    – Jimmy
    Oct 15, 2009 at 14:21

42 Answers 42

314

There are issues with leap year/days and the following method, see the update below:

try this:

DECLARE @dob  datetime
SET @dob='1992-01-09 00:00:00'

SELECT DATEDIFF(hour,@dob,GETDATE())/8766.0 AS AgeYearsDecimal
    ,CONVERT(int,ROUND(DATEDIFF(hour,@dob,GETDATE())/8766.0,0)) AS AgeYearsIntRound
    ,DATEDIFF(hour,@dob,GETDATE())/8766 AS AgeYearsIntTrunc

OUTPUT:

AgeYearsDecimal                         AgeYearsIntRound AgeYearsIntTrunc
--------------------------------------- ---------------- ----------------
17.767054                               18               17

(1 row(s) affected)

UPDATE here are some more accurate methods:

BEST METHOD FOR YEARS IN INT

DECLARE @Now  datetime, @Dob datetime
SELECT   @Now='1990-05-05', @Dob='1980-05-05'  --results in 10
--SELECT @Now='1990-05-04', @Dob='1980-05-05'  --results in  9
--SELECT @Now='1989-05-06', @Dob='1980-05-05'  --results in  9
--SELECT @Now='1990-05-06', @Dob='1980-05-05'  --results in 10
--SELECT @Now='1990-12-06', @Dob='1980-05-05'  --results in 10
--SELECT @Now='1991-05-04', @Dob='1980-05-05'  --results in 10

SELECT
    (CONVERT(int,CONVERT(char(8),@Now,112))-CONVERT(char(8),@Dob,112))/10000 AS AgeIntYears

you can change the above 10000 to 10000.0 and get decimals, but it will not be as accurate as the method below.

BEST METHOD FOR YEARS IN DECIMAL

DECLARE @Now  datetime, @Dob datetime
SELECT   @Now='1990-05-05', @Dob='1980-05-05' --results in 10.000000000000
--SELECT @Now='1990-05-04', @Dob='1980-05-05' --results in  9.997260273973
--SELECT @Now='1989-05-06', @Dob='1980-05-05' --results in  9.002739726027
--SELECT @Now='1990-05-06', @Dob='1980-05-05' --results in 10.002739726027
--SELECT @Now='1990-12-06', @Dob='1980-05-05' --results in 10.589041095890
--SELECT @Now='1991-05-04', @Dob='1980-05-05' --results in 10.997260273973

SELECT 1.0* DateDiff(yy,@Dob,@Now) 
    +CASE 
         WHEN @Now >= DATEFROMPARTS(DATEPART(yyyy,@Now),DATEPART(m,@Dob),DATEPART(d,@Dob)) THEN  --birthday has happened for the @now year, so add some portion onto the year difference
           (  1.0   --force automatic conversions from int to decimal
              * DATEDIFF(day,DATEFROMPARTS(DATEPART(yyyy,@Now),DATEPART(m,@Dob),DATEPART(d,@Dob)),@Now) --number of days difference between the @Now year birthday and the @Now day
              / DATEDIFF(day,DATEFROMPARTS(DATEPART(yyyy,@Now),1,1),DATEFROMPARTS(DATEPART(yyyy,@Now)+1,1,1)) --number of days in the @Now year
           )
         ELSE  --birthday has not been reached for the last year, so remove some portion of the year difference
           -1 --remove this fractional difference onto the age
           * (  -1.0   --force automatic conversions from int to decimal
                * DATEDIFF(day,DATEFROMPARTS(DATEPART(yyyy,@Now),DATEPART(m,@Dob),DATEPART(d,@Dob)),@Now) --number of days difference between the @Now year birthday and the @Now day
                / DATEDIFF(day,DATEFROMPARTS(DATEPART(yyyy,@Now),1,1),DATEFROMPARTS(DATEPART(yyyy,@Now)+1,1,1)) --number of days in the @Now year
             )
     END AS AgeYearsDecimal
14
  • 25
    This is also not an exact solution. If I take my own @dob to be '1986-07-05 00:00:00' and I'd execute this (use another variable instead of GETDATE()) on '2013-07-04 23:59:59' it says I'm 27, while at that moment, I'm not yet. Example code: declare @startDate nvarchar(100) = '1986-07-05 00:00:00' declare @endDate nvarchar(100) = '2013-07-04 23:59:59' SELECT DATEDIFF(hour,@startDate,@endDate)/8766.0 AS AgeYearsDecimal ,CONVERT(int,ROUND(DATEDIFF(hour,@startDate,@endDate)/8766.0,0)) AS AgeYearsIntRound ,DATEDIFF(hour,@startDate,@endDate)/8766 AS AgeYearsIntTrunc Dec 16, 2013 at 10:00
  • 20
    This is not accurate as it assumes 8766 hours per year, which works out to 365.25 days. Since there are no years with 365.25 days, this will be incorrect near the person's birthdate more often than it is correct. This method is still going to be more accurate.
    – Bacon Bits
    Jun 2, 2014 at 13:00
  • 1
    Second @Bacon Bits comment - this will often be wrong when current date is near a person's birth date.
    – flash
    Jul 3, 2014 at 14:37
  • 4
    I think the first block of text makes this answer confusing. If your updated method does not have the issue with leap years, I'd suggest (if you really want to keep it at all) to move it down the bottom of your answer.
    – ajbeaven
    Jul 4, 2017 at 23:14
  • 1
    If you want an EXACT calculation, then DATEDIFF won't do it @ShailendraMishra, because it approximates days,etc. For example, select datediff(year, '2000-01-05', '2018-01-04') returns 18, not 17 as it should. I used the example above under heading "BEST METHOD FOR YEARS IN INT" and it works perfectly. Thanks!
    – openwonk
    Nov 8, 2018 at 1:37
179

Gotta throw this one out there. If you convert the date using the 112 style (yyyymmdd) to a number you can use a calculation like this...

(yyyyMMdd - yyyyMMdd) / 10000 = difference in full years

declare @as_of datetime, @bday datetime;
select @as_of = '2009/10/15', @bday = '1980/4/20'

select 
    Convert(Char(8),@as_of,112),
    Convert(Char(8),@bday,112),
    0 + Convert(Char(8),@as_of,112) - Convert(Char(8),@bday,112), 
    (0 + Convert(Char(8),@as_of,112) - Convert(Char(8),@bday,112)) / 10000

output

20091015    19800420    290595  29
4
  • 22
    This is almost magical in how it solves all the leap year problems. May be worth noting that 112 is a special number for the CONVERT function that formats the date as yyyymmdd. It's possibly not obvious for everyone when you look at it. May 27, 2015 at 21:12
  • My team was running into an issue when the date we were using to find age was the same day as the date we are comparing it to. We were noticing that when they were the same day (and if the age was going to be odd) the age would be off by one. This worked perfectly! Jun 5, 2018 at 15:47
  • 13
    The simplest/shortest code for this exact same calculation method in SQL Server 2012+ is code: SELECT [Age] = (0+ FORMAT(@as_of,'yyyyMMdd') - FORMAT(@bday,'yyyyMMdd') ) /10000 --The 0+ part tells SQL to calc the char(8) as numbers
    – ukgav
    Mar 4, 2019 at 1:19
  • Just note this is only accurate for the integer component of the age. Don't try and divide by 10000.00 (to result in a decimal rather than int) and expect the decimal component to accurately reflect the age.
    – Tyson
    Feb 20, 2023 at 12:43
57

I have used this query in our production code for nearly 10 years:

SELECT FLOOR((CAST (GetDate() AS INTEGER) - CAST(Date_of_birth AS INTEGER)) / 365.25) AS Age
8
  • 9
    It's not bad, but is not 100%, 2007/10/16 will report an age of 2 on 2009/10/15
    – Andrew
    Oct 15, 2009 at 13:11
  • 4
    Doh, we're missing the obvious, it's after mid-day, getdate returns an int so will be rounding up of course. I copy pasted your answer and ran it, so automatically used getdate, not the literal.
    – Andrew
    Oct 15, 2009 at 16:28
  • 1
    It doesn't work for DOB='1969-01-10' and Today='2014-01-10'. Age should be 45, not 44. You should use "365.23076923074" instead of "365.25", as in @mediantiba's post.
    – Granger
    Jan 22, 2014 at 17:08
  • 12
    If we're talking about human ages, you should calculate it the way humans calculate age. It has nothing to do with how fast the earth moves and everything to do with the calendar. Every time the same month and day elapses as the date of birth, you increment age by 1. This means the following is the most accurate because it mirrors what humans mean when they say "age": DATEDIFF(yy, @BirthDate, GETDATE()) - CASE WHEN (MONTH(@BirthDate) >= MONTH(GETDATE())) AND DAY(@BirthDate) > DAY(GETDATE()) THEN 1 ELSE 0 END
    – Bacon Bits
    Jun 2, 2014 at 13:06
  • 8
    Sorry, that syntax is wrong. CASE WHEN (MONTH(@date) > MONTH(GETDATE())) OR (MONTH(@date) = MONTH(GETDATE()) AND DAY(@date) > DAY(GETDATE())) THEN 1 ELSE 0 END
    – Bacon Bits
    Jun 3, 2014 at 12:43
42

You need to consider the way the datediff command rounds.

SELECT CASE WHEN dateadd(year, datediff (year, DOB, getdate()), DOB) > getdate()
            THEN datediff(year, DOB, getdate()) - 1
            ELSE datediff(year, DOB, getdate())
       END as Age
FROM <table>

Which I adapted from here.

Note that it will consider 28th February as the birthday of a leapling for non-leap years e.g. a person born on 29 Feb 2020 will be considered 1 year old on 28 Feb 2021 instead of 01 Mar 2021.

6
  • @Andrew - Corrected - I missed one of the substitutions
    – Ed Harper
    Oct 15, 2009 at 13:27
  • 5
    Simplified version SELECT DATEDIFF(year, DOB, getdate()) + CASE WHEN (DATEADD(year,DATEDIFF(year, DOB, getdate()) , DOB) > getdate()) THEN - 1 ELSE 0 END)
    – Peter
    Feb 10, 2017 at 14:26
  • 3
    This is the correct approach; I don't understand why hacks are upvoted so much.
    – Salman A
    Mar 13, 2020 at 12:39
  • 1
    This is the way. The logic is very easy to follow too. Take the year difference between two dates and add this the original DOB. This is the DOB this year. If this date is after today, the birthday has not happened yet; subtract 1 to account for this. Otherwise, the birthday is today or the birthday has already passed; return the actual year difference. This works for leap years too. Dec 16, 2021 at 15:41
  • 2
    It's also more that 16 times faster than using FORMAT.
    – Jeff Moden
    Apr 14, 2022 at 3:23
35

So many of the above solutions are wrong DateDiff(yy,@Dob, @PassedDate) will not consider the month and day of both dates. Also taking the dart parts and comparing only works if they're properly ordered.

THE FOLLOWING CODE WORKS AND IS VERY SIMPLE:

create function [dbo].[AgeAtDate](
    @DOB    datetime,
    @PassedDate datetime
)

returns int
with SCHEMABINDING
as
begin

declare @iMonthDayDob int
declare @iMonthDayPassedDate int


select @iMonthDayDob = CAST(datepart (mm,@DOB) * 100 + datepart  (dd,@DOB) AS int) 
select @iMonthDayPassedDate = CAST(datepart (mm,@PassedDate) * 100 + datepart  (dd,@PassedDate) AS int) 

return DateDiff(yy,@DOB, @PassedDate) 
- CASE WHEN @iMonthDayDob <= @iMonthDayPassedDate
  THEN 0 
  ELSE 1
  END

End
6
  • Why are you multiplying by 100? This works for me as I'm trying to replicate in the database what exists in our code library - but I couldn't explain your function. This might be a stupid question :)
    – Jen
    Sep 25, 2013 at 5:30
  • 7
    Thanks! Exactly the code I was expecting here. This is the only exactly correct code in this thread without (ugly) string transformations! @Jen It takes the month and day of the DoB (like September 25) and turns it into an integer value 0925 (or 925). It does the same with the current date (like December 16 becomes 1216) and then checks whether the DoB integer value has passed already. To create this integer, the month should be multiplied by 100. Dec 16, 2013 at 10:23
  • I'll just mention that while this does avoid string transformations, it does a lot of casting instead. My testing shows it's not significantly faster than dotjoe's answer, and the code is more verbose. Dec 20, 2018 at 15:46
  • the accepted answer has a much simpler INT answer: (CONVERT(int,CONVERT(char(8),@Now,112))-CONVERT(char(8),@Dob,112))/10000
    – KM.
    Feb 20, 2019 at 20:54
  • @KM. It also appears (based on comments on the accepted answer) that the accepted answer is incorrect and will produce wrong values. Mar 20, 2020 at 15:49
10

I believe this is similar to other ones posted here.... but this solution worked for the leap year examples 02/29/1976 to 03/01/2011 and also worked for the case for the first year.. like 07/04/2011 to 07/03/2012 which the last one posted about leap year solution did not work for that first year use case.

SELECT FLOOR(DATEDIFF(DAY, @date1 , @date2) / 365.25)

Found here.

1
  • This does not work for date exactly after a year, decimal part is .999 when it should be a whole number after a year. Nov 18, 2021 at 3:58
10

EDIT: THIS ANSWER IS INCORRECT. I leave it in here as a warning to anyone tempted to use dayofyear, with a further edit at the end.


If, like me, you do not want to divide by fractional days or risk rounding/leap year errors, I applaud @Bacon Bits comment in a post above https://stackoverflow.com/a/1572257/489865 where he says:

If we're talking about human ages, you should calculate it the way humans calculate age. It has nothing to do with how fast the earth moves and everything to do with the calendar. Every time the same month and day elapses as the date of birth, you increment age by 1. This means the following is the most accurate because it mirrors what humans mean when they say "age".

He then offers:

DATEDIFF(yy, @date, GETDATE()) -
CASE WHEN (MONTH(@date) > MONTH(GETDATE())) OR (MONTH(@date) = MONTH(GETDATE()) AND DAY(@date) > DAY(GETDATE()))
THEN 1 ELSE 0 END

There are several suggestions here involving comparing the month & day (and some get it wrong, failing to allow for the OR as correctly here!). But nobody has offered dayofyear, which seems so simple and much shorter. I offer:

DATEDIFF(year, @date, GETDATE()) -
CASE WHEN DATEPART(dayofyear, @date) > DATEPART(dayofyear, GETDATE()) THEN 1 ELSE 0 END

[Note: Nowhere in SQL BOL/MSDN is what DATEPART(dayofyear, ...) returns actually documented! I understand it to be a number in the range 1--366; most importantly, it does not change by locale as per DATEPART(weekday, ...) & SET DATEFIRST.]


EDIT: Why dayofyear goes wrong: As user @AeroX has commented, if the birth/start date is after February in a non leap year, the age is incremented one day early when the current/end date is a leap year, e.g. '2015-05-26', '2016-05-25' gives an age of 1 when it should still be 0. Comparing the dayofyear in different years is clearly dangerous. So using MONTH() and DAY() is necessary after all.

3
  • This should be voted up or even marked as the answer. It is short, elegant and logically correct.
    – z00l
    Mar 23, 2016 at 9:49
  • 2
    For everyone born after February their Age is incremented one day early on every leap year using the DayOfYear method.
    – AeroX
    May 23, 2016 at 10:49
  • 4
    @AeroX Thank you for spotting this flaw. I decided to leave my solution in as a warning to anyone who might or has used dayofyear, but clearly edited to show why it goes wrong. I hope that is suitable.
    – JonBrave
    May 25, 2016 at 9:26
6

Since there isn't one simple answer that always gives the correct age, here's what I came up with.

SELECT DATEDIFF(YY, DateOfBirth, GETDATE()) - 
     CASE WHEN RIGHT(CONVERT(VARCHAR(6), GETDATE(), 12), 4) >= 
               RIGHT(CONVERT(VARCHAR(6), DateOfBirth, 12), 4) 
     THEN 0 ELSE 1 END AS AGE 

This gets the year difference between the birth date and the current date. Then it subtracts a year if the birthdate hasn't passed yet.

Accurate all the time - regardless of leap years or how close to the birthdate.

Best of all - no function.

2
  • There is one simple answer using the FORMAT function for SQL Server 2012+ SELECT [Age] = (0+ FORMAT(GETDATE(),'yyyyMMdd') - FORMAT(DateOfBirth,'yyyyMMdd') ) /10000 The 0+ part tells SQL to calc the char(8) as numbers
    – ukgav
    Nov 19, 2020 at 11:53
  • FORMAT gives the correct answer but isn't the right answer because it's 16 times slower than the right answer.
    – Jeff Moden
    Apr 14, 2022 at 3:25
5

I've done a lot of thinking and searching about this and I have 3 solutions that

  • calculate age correctly
  • are short (mostly)
  • are (mostly) very understandable.

Here are testing values:

DECLARE @NOW DATETIME = '2013-07-04 23:59:59' 
DECLARE @DOB DATETIME = '1986-07-05' 

Solution 1: I found this approach in one js library. It's my favourite.

DATEDIFF(YY, @DOB, @NOW) - 
  CASE WHEN DATEADD(YY, DATEDIFF(YY, @DOB, @NOW), @DOB) > @NOW THEN 1 ELSE 0 END

It's actually adding difference in years to DOB and if it is bigger than current date then subtracts one year. Simple right? The only thing is that difference in years is duplicated here.

But if you don't need to use it inline you can write it like this:

DECLARE @AGE INT = DATEDIFF(YY, @DOB, @NOW)
IF DATEADD(YY, @AGE, @DOB) > @NOW
SET @AGE = @AGE - 1

Solution 2: This one I originally copied from @bacon-bits. It's the easiest to understand but a bit long.

DATEDIFF(YY, @DOB, @NOW) - 
  CASE WHEN MONTH(@DOB) > MONTH(@NOW) 
    OR MONTH(@DOB) = MONTH(@NOW) AND DAY(@DOB) > DAY(@NOW) 
  THEN 1 ELSE 0 END

It's basically calculating age as we humans do.


Solution 3: My friend refactored it into this:

DATEDIFF(YY, @DOB, @NOW) - 
  CEILING(0.5 * SIGN((MONTH(@DOB) - MONTH(@NOW)) * 50 + DAY(@DOB) - DAY(@NOW)))

This one is the shortest but it's most difficult to understand. 50 is just a weight so the day difference is only important when months are the same. SIGN function is for transforming whatever value it gets to -1, 0 or 1. CEILING(0.5 * is the same as Math.max(0, value) but there is no such thing in SQL.

0
5
select floor((datediff(day,0,@today) - datediff(day,0,@birthdate)) / 365.2425) as age

There are a lot of 365.25 answers here. Remember how leap years are defined:

  • Every four years
    • except every 100 years
      • except every 400 years
1
3

What about:

DECLARE @DOB datetime
SET @DOB='19851125'   
SELECT Datepart(yy,convert(date,GETDATE())-@DOB)-1900

Wouldn't that avoid all those rounding, truncating and ofsetting issues?

3
  • You calculation is not accurate. For example: it fails if you take '1986-07-05 00:00:00' for DOB and '2013-07-04 23:59:59' for current time.
    – drinovc
    Jun 3, 2016 at 11:08
  • @ub_coding Are you offering and answer or asking another question?
    – Aaron C
    Dec 8, 2016 at 18:01
  • this: DECLARE @DOB datetime SET @DOB='19760229' SELECT Datepart(yy,convert(datetime,'19770228')-@DOB)-1900 =1 the main problem is fev 29 gap for most solutions , thats explain truncating rounding etc. Jun 14, 2017 at 21:01
3

Just check whether the below answer is feasible.

DECLARE @BirthDate DATE = '09/06/1979'

SELECT 
 (
 YEAR(GETDATE()) - YEAR(@BirthDate) - 
 CASE  WHEN (MONTH(GETDATE()) * 100) + DATEPART(dd, GETDATE()) >     
 (MONTH(@BirthDate) * 100) + DATEPART(dd, @BirthDate)
 THEN 1             
 ELSE 0             
 END        
 )
3

There are many answers to this question, but I think this one is close to the truth.

The datediff(year,…,…) function, as we all know, only counts the boundaries crossed by the date part, in this case the year. As a result it ignores the rest of the year.

This will only give the age in completed years if the year were to start on the birthday. It probably doesn’t, but we can fake it by adjusting the asking date back by the same amount.

In pseudopseudo code, it’s something like this:

adjusted_today = today - month(dob) + 1 - day(dob) + 1
age = year(adjusted_today - dob)
  • The + 1 is to allow for the fact that the month and day numbers start from 1 and not 0.
  • The reason we subtract the month and the day separately rather than the day of the year is because February has the annoying tendency to change its length.

The calculation in SQL is:

datediff(year,dob,dateadd(month,-month(dob)+1,dateadd(day,-day(dob)+1,today)))

where dob and today are presumed to be the date of birth and the asking date.

You can test this as follows:

WITH dates AS (
    SELECT
        cast('2022-03-01' as date) AS today,
        cast('1943-02-25' as date) AS dob
)
select
    datediff(year,dob,dateadd(month,-month(dob)+1,dateadd(day,-day(dob)+1,today))) AS age
from dates;

which gives you George Harrison’s age in completed years.

This is much cleaner than fiddling about with quarter days which will generally give you misleading values on the edges.

If you have the luxury of creating a scalar function, you can use something like this:

DROP FUNCTION IF EXISTS age;
GO
CREATE FUNCTION age(@dob date, @today date) RETURNS INT AS
BEGIN
    SET @today = dateadd(month,-month(@dob)+1,@today);
    SET @today = dateadd(day,-day(@dob)+1,@today);
    RETURN datediff(year,@dob,@today);
END;
GO

Remember, you need to call dbo.age() because, well, Microsoft.

2
DECLARE @DOB datetime
set @DOB ='11/25/1985'

select floor(
( cast(convert(varchar(8),getdate(),112) as int)-
cast(convert(varchar(8),@DOB,112) as int) ) / 10000
)

source: http://beginsql.wordpress.com/2012/04/26/how-to-calculate-age-in-sql-server/

1
  • A shorter way of doing this in SQL Server 2012+ is as follows, and avoids the converts to 112 and floor is not required: code: SELECT [Age] = (0+ FORMAT(@ToDate,'yyyyMMdd') - FORMAT(@DOB,'yyyyMMdd') ) /10000
    – ukgav
    Mar 4, 2019 at 1:11
2

Try This

DECLARE @date datetime, @tmpdate datetime, @years int, @months int, @days int
SELECT @date = '08/16/84'

SELECT @tmpdate = @date

SELECT @years = DATEDIFF(yy, @tmpdate, GETDATE()) - CASE WHEN (MONTH(@date) > MONTH(GETDATE())) OR (MONTH(@date) = MONTH(GETDATE()) AND DAY(@date) > DAY(GETDATE())) THEN 1 ELSE 0 END
SELECT @tmpdate = DATEADD(yy, @years, @tmpdate)
SELECT @months = DATEDIFF(m, @tmpdate, GETDATE()) - CASE WHEN DAY(@date) > DAY(GETDATE()) THEN 1 ELSE 0 END
SELECT @tmpdate = DATEADD(m, @months, @tmpdate)
SELECT @days = DATEDIFF(d, @tmpdate, GETDATE())

SELECT Convert(Varchar(Max),@years)+' Years '+ Convert(Varchar(max),@months) + ' Months '+Convert(Varchar(Max), @days)+'days'
1
  • This answer could be put together better, but it has the only correct and good calculation. The top voted and accepted is only an estimate, and the other highly-voted answer relies on string conversions, which are notoriously slow and prone to issues around internationalization. Aug 14, 2020 at 14:33
2

After trying MANY methods, this works 100% of the time using the modern MS SQL FORMAT function instead of convert to style 112. Either would work but this is the least code.

Can anyone find a date combination which does not work? I don't think there is one :)

--Set parameters, or choose from table.column instead:

DECLARE @DOB    DATE = '2000/02/29' -- If @DOB is a leap day...
       ,@ToDate DATE = '2018/03/01' --...there birthday in this calculation will be 

--0+ part tells SQL to calc the char(8) as numbers:
SELECT [Age] = (0+ FORMAT(@ToDate,'yyyyMMdd') - FORMAT(@DOB,'yyyyMMdd') ) /10000
3
  • While it provides the correct answer, it's not the right answer because FORMAT makes it more than 16 times slower than the right answer.
    – Jeff Moden
    Apr 14, 2022 at 3:28
  • I'm honoured that legend Jeff Moden would tell me its the correct answer, but the slowest :) Noted. What is the 16X faster correct answer? :)
    – ukgav
    Sep 7, 2022 at 14:24
  • What rules do you follow for when someone was born on the 29 of February? Once I know that, I can show you one of two methods with test data.
    – Jeff Moden
    Sep 9, 2022 at 3:21
1
CASE WHEN datepart(MM, getdate()) < datepart(MM, BIRTHDATE) THEN ((datepart(YYYY, getdate()) - datepart(YYYY, BIRTH_DATE)) -1 )
     ELSE 
        CASE WHEN datepart(MM, getdate()) = datepart(MM, BIRTHDATE)
            THEN 
                CASE WHEN datepart(DD, getdate()) < datepart(DD, BIRTHDATE) THEN ((datepart(YYYY, getdate()) - datepart(YYYY, BIRTHDATE)) -1 )
                    ELSE (datepart(YYYY, getdate()) - datepart(YYYY, BIRTHDATE))
                END
        ELSE (datepart(YYYY, getdate()) - datepart(YYYY, BIRTHDATE)) END            
    END
0
SELECT ID,
Name,
DATEDIFF(yy,CONVERT(DATETIME, DOB),GETDATE()) AS AGE,
DOB
FROM MyTable
2
  • 1
    You want getdate as the second argument not the first otherwise you get negative number results, and datediff rounds, so select datediff(yy, '20081231', getdate()) will report an age of 1, but they would only be 10 months old.
    – Andrew
    Oct 15, 2009 at 12:54
  • 2
    This calculation gives incorrect calculations for people who've not yet had their birthday this year.
    – user565869
    Apr 2, 2014 at 16:45
0

How about this:

SET @Age = CAST(DATEDIFF(Year, @DOB, @Stamp) as int)
IF (CAST(DATEDIFF(DAY, DATEADD(Year, @Age, @DOB), @Stamp) as int) < 0) 
    SET @Age = @Age - 1
0

Try this solution:

declare @BirthDate datetime
declare @ToDate datetime

set @BirthDate = '1/3/1990'
set @ToDate = '1/2/2008'
select @BirthDate [Date of Birth], @ToDate [ToDate],(case when (DatePart(mm,@ToDate) <  Datepart(mm,@BirthDate)) 
        OR (DatePart(m,@ToDate) = Datepart(m,@BirthDate) AND DatePart(dd,@ToDate) < Datepart(dd,@BirthDate))
        then (Datepart(yy, @ToDate) - Datepart(yy, @BirthDate) - 1)
        else (Datepart(yy, @ToDate) - Datepart(yy, @BirthDate))end) Age
0

This will correctly handle the issues with the birthday and rounding:

DECLARE @dob  datetime
SET @dob='1992-01-09 00:00:00'

SELECT DATEDIFF(YEAR, '0:0', getdate()-@dob)
1
  • 2
    Doesn't handle leap years correctly SELECT DATEDIFF(YEAR, '0:0', convert(datetime, '2014-02-28') -'2012-02-29') gives 2, but should only be 1
    – Peter Kerr
    Dec 11, 2014 at 10:10
0

Ed Harper's solution is the simplest I have found which never returns the wrong answer when the month and day of the two dates are 1 or less days apart. I made a slight modification to handle negative ages.

DECLARE @D1 AS DATETIME, @D2 AS DATETIME
SET @D2 = '2012-03-01 10:00:02'
SET @D1 = '2013-03-01 10:00:01'
SELECT
   DATEDIFF(YEAR, @D1,@D2)
   +
   CASE
      WHEN @D1<@D2 AND DATEADD(YEAR, DATEDIFF(YEAR,@D1, @D2), @D1) > @D2
      THEN - 1
      WHEN @D1>@D2 AND DATEADD(YEAR, DATEDIFF(YEAR,@D1, @D2), @D1) < @D2
      THEN 1
      ELSE 0
   END AS AGE
0

The answer marked as correct is nearer to accuracy but, it fails in following scenario - where Year of birth is Leap year and day are after February month

declare @ReportStartDate datetime = CONVERT(datetime, '1/1/2014'),
@DateofBirth datetime = CONVERT(datetime, '2/29/1948')

FLOOR(DATEDIFF(HOUR,@DateofBirth,@ReportStartDate )/8766)


OR

FLOOR(DATEDIFF(HOUR,@DateofBirth,@ReportStartDate )/8765.82) -- Divisor is more accurate than 8766

-- Following solution is giving me more accurate results.

FLOOR(DATEDIFF(YEAR,@DateofBirth,@ReportStartDate) - (CASE WHEN DATEADD(YY,DATEDIFF(YEAR,@DateofBirth,@ReportStartDate),@DateofBirth) > @ReportStartDate THEN 1 ELSE 0 END ))

It worked in almost all scenarios, considering leap year, date as 29 feb, etc.

Please correct me if this formula have any loophole.

1
0
Declare @dob datetime
Declare @today datetime

Set @dob = '05/20/2000'
set @today = getdate()

select  CASE
            WHEN dateadd(year, datediff (year, @dob, @today), @dob) > @today 
            THEN datediff (year, @dob, @today) - 1
            ELSE datediff (year, @dob, @today)
        END as Age
0

Here is how i calculate age given a birth date and current date.

select case 
            when cast(getdate() as date) = cast(dateadd(year, (datediff(year, '1996-09-09', getdate())), '1996-09-09') as date)
                then dateDiff(yyyy,'1996-09-09',dateadd(year, 0, getdate()))
            else dateDiff(yyyy,'1996-09-09',dateadd(year, -1, getdate()))
        end as MemberAge
go
0
CREATE function dbo.AgeAtDate(
    @DOB    datetime,
    @CompareDate datetime
)

returns INT
as
begin

return CASE WHEN @DOB is null
THEN 
    null
ELSE 
DateDiff(yy,@DOB, @CompareDate) 
- CASE WHEN datepart(mm,@CompareDate) > datepart(mm,@DOB) OR (datepart(mm,@CompareDate) = datepart(mm,@DOB) AND datepart(dd,@CompareDate) >= datepart(dd,@DOB))
  THEN 0 
  ELSE 1
  END
END
End

GO
2
  • -1: Will be wrong any time month(compare) > month(dob) BUT day(compare) < day(dob), e.g. select dbo.AgeAtDate('2000-01-14', '2016-02-12').
    – JonBrave
    Feb 17, 2016 at 12:05
  • You are right, thank you for this case, have updated function
    – Volodymyr
    Feb 17, 2016 at 12:33
0
DECLARE @FromDate DATETIME = '1992-01-2623:59:59.000', 
        @ToDate   DATETIME = '2016-08-10 00:00:00.000',
        @Years INT, @Months INT, @Days INT, @tmpFromDate DATETIME
SET @Years = DATEDIFF(YEAR, @FromDate, @ToDate)
 - (CASE WHEN DATEADD(YEAR, DATEDIFF(YEAR, @FromDate, @ToDate),
          @FromDate) > @ToDate THEN 1 ELSE 0 END) 


SET @tmpFromDate = DATEADD(YEAR, @Years , @FromDate)
SET @Months =  DATEDIFF(MONTH, @tmpFromDate, @ToDate)
 - (CASE WHEN DATEADD(MONTH,DATEDIFF(MONTH, @tmpFromDate, @ToDate),
          @tmpFromDate) > @ToDate THEN 1 ELSE 0 END) 

SET @tmpFromDate = DATEADD(MONTH, @Months , @tmpFromDate)
SET @Days =  DATEDIFF(DAY, @tmpFromDate, @ToDate)
 - (CASE WHEN DATEADD(DAY, DATEDIFF(DAY, @tmpFromDate, @ToDate),
          @tmpFromDate) > @ToDate THEN 1 ELSE 0 END) 

SELECT @FromDate FromDate, @ToDate ToDate, 
       @Years Years,  @Months Months, @Days Days
0

What about a solution with only date functions, not math, not worries about leap year

CREATE FUNCTION dbo.getAge(@dt datetime) 
RETURNS int
AS
BEGIN
    RETURN 
        DATEDIFF(yy, @dt, getdate())
        - CASE 
            WHEN 
                MONTH(@dt) > MONTH(GETDATE()) OR 
                (MONTH(@dt) = MONTH(GETDATE()) AND DAY(@dt) > DAY(GETDATE())) 
            THEN 1 
            ELSE 0 
        END
END
0
declare @birthday as datetime
set @birthday = '2000-01-01'
declare @today as datetime
set @today = GetDate()
select 
    case when ( substring(convert(varchar, @today, 112), 5,4) >= substring(convert(varchar, @birthday, 112), 5,4)  ) then
        (datepart(year,@today) - datepart(year,@birthday))
    else 
        (datepart(year,@today) - datepart(year,@birthday)) - 1
    end
0

The following script checks the difference in years between now and the given date of birth; the second part checks whether the birthday is already past in the current year; if not, it subtracts it:

SELECT year(NOW()) - year(date_of_birth) - (CONCAT(year(NOW()), '-', month(date_of_birth), '-', day(date_of_birth)) > NOW()) AS Age
FROM tableName;

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