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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

Many thanks!

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9  
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 '09 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 '09 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 '09 at 13:12
3  
@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 '09 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 '09 at 14:21
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19 Answers

up vote 64 down vote accepted

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)
share|improve this answer
    
Thanks KM, I'm using the truncated option, works a treat! –  Jimmy Oct 15 '09 at 15:05
    
There were issues importing the varchar as datetime originally (hence DOB is stored as a varchar), but you can use this method? How does that make sense? Don't you get the same 'issues' here? –  Kirk Broadhurst Oct 16 '09 at 9:23
    
@Kirk Broadhurst, possibly they loaded them into this table using varchar, and then did a second pass fixing them up. It would be better to load them into a work table using varchar and then fix them before moving them to the actual table where they are datetime. –  KM. Oct 16 '09 at 13:46
7  
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 –  bartlaarhoven Dec 16 '13 at 10:00
2  
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 at 13:00
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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
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2  
It's not bad, but is not 100%, 2007/10/16 will report an age of 2 on 2009/10/15 –  Andrew Oct 15 '09 at 13:11
    
It doesn't on mine, it returns 1 which is the correct answer. –  J__ Oct 15 '09 at 13:27
    
returns 1 for me too –  KM. Oct 15 '09 at 14:11
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 '09 at 16:28
1  
Elegant and simple. Thanks! –  William M-B Apr 23 '13 at 13:18
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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
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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 '13 at 5:30
    
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. –  bartlaarhoven Dec 16 '13 at 10:23
    
Thanks @bartlaarhoven :) –  Jen Jan 8 at 4:32
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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

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Ed, Whats d1 and d2 in this? –  Andrew Oct 15 '09 at 13:06
    
@Andrew - Corrected - I missed one of the substitutions –  Ed Harper Oct 15 '09 at 13:27
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Gotta throw this one out there.

(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
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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?

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Try this:

select cast(datediff(DAY, '2000-03-01 10:00:01', '2013-03-01 10:00:00') / (365.23076923074) as int) as 'Age'

select cast(datediff(HOUR, '2000-03-01 10:00:01', '2013-03-01 10:00:00') / (365.23076923074 * 24) as int) as 'Age'

select cast(datediff(MINUTE, '2000-03-01 10:00:01', '2013-03-01 10:00:00') / (365.23076923074 * 24 * 60) as int) as 'Age'

select cast(datediff(SECOND, '2000-03-01 10:00:01', '2013-03-01 10:00:00') / (365.23076923074 * 24 * 60 * 60) as int) as 'Age'

Output:

Age
---
13   // counting by days

Age
---
13   // counting by hours

Age
---
13   // counting by minutes

Age
---
12   // counting by seconds

Note that 365.23076923074 provides more accuracy than 365.25, so you should use it in order to get correct and accurate results.

You can also write this as a function that returns an int as follows:

CREATE FUNCTION [dbo].[GetAge](@birthdate datetime, @date datetime)
RETURNS int
AS
BEGIN
return datediff(SECOND, @birthdate, @date) / (365.23076923074 * 24 * 60 * 60)
END

Good luck!

share|improve this answer
    
I think this is the best answer now. E.g. If someone was born on 1969-01-10, you'd expect people to consider them to be 45 on 2014-01-10. But if you use "365.25", you'd think they were still 44. SELECT DATEDIFF(SECOND, '1969-01-10', '2014-01-10') / (365.25 * 24 * 60 * 60) AS OldAndBusted , DATEDIFF(SECOND, '1969-01-10', '2014-01-10') / (365.23076923074 * 24 * 60 * 60) AS NewHotness –  Granger Jan 22 at 17:00
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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.

Found this here: http://blogs.x2line.com/al/archive/2007/08/10/3235.aspx

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

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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/

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SELECT ID,
Name,
DATEDIFF(yy,CONVERT(DATETIME, DOB),GETDATE()) AS AGE,
DOB
FROM MyTable
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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 '09 at 12:54
    
You are correct - my bad. Thanks. –  flayto Oct 15 '09 at 13:01
    
This calculation gives incorrect calculations for people who've not yet had their birthday this year. –  Jon of All Trades Apr 2 at 16:45
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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
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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'
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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
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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)
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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
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We used something like here, but then taking the average age:

ROUND(avg(CONVERT(int,DATEDIFF(hour,DOB,GETDATE())/8766.0)),0) AS AverageAge

Notice, the ROUND is outside rather than inside. This will allow for the AVG to be more accurate and we ROUND only once. Making it faster too.

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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.

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select datediff(day,'1991-03-16',getdate()) \for days,get date refers today date select datediff(year,'1991-03-16',getdate()) \for years select datediff(month,'1991-03-16',getdate()) \for month

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select DATEDIFF(yy,@DATE,GETDATE()) -
case when DATEPART(mm,GETDATE())*100+DATEPART(dd,GETDATE())>=
DATEPART(mm,@DATE)*100+DATEPART(dd,@DATE) THEN 0
ELSE 1 END 
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