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I need to determine the number of days in a month for a given date in SQL Server.

Is there a built-in function? If not, what should I use as the user-defined function?

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14 Answers 14

up vote 56 down vote accepted

You can use the following with the first day of the specified month:

datediff(day, @date, dateadd(month, 1, @date))

To make it work for every date:

datediff(day, dateadd(day, 1-day(@date), @date),
              dateadd(month, 1, dateadd(day, 1-day(@date), @date)))
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+1 for most elegant solution! –  Neil N Mar 27 '09 at 19:02
1  
Like Stan says this will give inaccurate results in some cases –  DJ. Mar 27 '09 at 19:12
    
It always works with the first day of the month. –  Mehrdad Afshari Mar 27 '09 at 19:14
3  
don't you mean : datediff ( day , dateadd ( day , 1-day(@date) , @date) , dateadd ( month , 1 , dateadd ( day , 1-day(@date) , @date))) –  feihtthief Mar 27 '09 at 19:54
1  
It's a rare corner case, but I just stumbled into it: This will throw an error for December 9999. –  Heinzi Dec 17 '12 at 9:55

You do need to add a function, but it's a simple one. I use this:

CREATE FUNCTION [dbo].[ufn_GetDaysInMonth] ( @pDate    DATETIME )

RETURNS INT
AS
BEGIN

    SET @pDate = CONVERT(VARCHAR(10), @pDate, 101)
    SET @pDate = @pDate - DAY(@pDate) + 1

    RETURN DATEDIFF(DD, @pDate, DATEADD(MM, 1, @pDate))
END

GO
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1  
The combination of DATEDIFF and DATEADD, by the way, doesn't always work. If you put a date of 1/31/2009 into it, the DATEADD will return 2/28/2009 and the DATEDIFF gives you 28, rather than 31. –  Stan Scott Mar 27 '09 at 19:05
--Last Day of Previous Month
SELECT DATEPART(day, DATEADD(s,-1,DATEADD(mm, DATEDIFF(m,0,GETDATE()),0)))

--Last Day of Current Month
SELECT DATEPART(day, DATEADD(s,-1,DATEADD(mm, DATEDIFF(m,0,GETDATE())+1,0)))

--Last Day of Next Month
SELECT DATEPART(day, DATEADD(s,-1,DATEADD(mm, DATEDIFF(m,0,GETDATE())+2,0)))

Personally though, I would make a UDF for it if there is not a built in function...

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LMGTFY... Let Me Google that For You. mod+2 –  Mark Brady Mar 27 '09 at 19:28

I upvoted Mehrdad, but this works as well. :)

CREATE function dbo.IsLeapYear
(
    @TestYear int
)
RETURNS bit
AS
BEGIN
    declare @Result bit
    set @Result = 
    cast(
    	case when ((@TestYear % 4 = 0) and (@testYear % 100 != 0)) or (@TestYear % 400 = 0)
    	then 1
    	else 0
    	end
    as bit )
    return @Result
END
GO

CREATE FUNCTION dbo.GetDaysInMonth
(
    @TestDT datetime
)
RETURNS INT
AS
BEGIN

    DECLARE @Result int 
    DECLARE @MonthNo int

    Set @MonthNo = datepart(m,@TestDT)

    Set @Result = 
    case @MonthNo
    	when  1 then 31
    	when  2 then 
    		case 
    			when dbo.IsLeapYear(datepart(yyyy,@TestDT)) = 0
    			then 28
    			else 29
    		end
    	when  3 then 31
    	when  4 then 30
    	when  5 then 31
    	when  6 then 30
    	when  7 then 31
    	when  8 then 31
    	when  9 then 30 
    	when 10 then 31
    	when 11 then 30 
    	when 12 then 31
    end

    RETURN @Result
END
GO

To Test

declare @testDT datetime;

set @testDT = '2404-feb-15';

select dbo.GetDaysInMonth(@testDT)
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never said it was good, just that it works –  feihtthief Mar 27 '09 at 19:44

here's another one...

Select Day(DateAdd(day, -Day(DateAdd(month, 1, getdate())), 
                         DateAdd(month, 1, getdate())))
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I know this question is old but I thought I would share what I'm using.

DECLARE @date date = '2011-12-22'

/* FindFirstDayOfMonth - Find the first date of any month */
-- Replace the day part with -01
DECLARE @firstDayOfMonth date = CAST( CAST(YEAR(@date) AS varchar(4)) + '-' + 
                                      CAST(MONTH(@date) AS varchar(2)) + '-01' AS date)
SELECT @firstDayOfMonth

and

DECLARE @date date = '2011-12-22'

/* FindLastDayOfMonth - Find what is the last day of a month - Leap year is handled by DATEADD */
-- Get the first day of next month and remove a day from it using DATEADD
DECLARE @lastDayOfMonth date = CAST( DATEADD(dd, -1, DATEADD(mm, 1, FindFirstDayOfMonth(@date))) AS date)

SELECT @lastDayOfMonth

Those could be combine to create a single function to retrieve the number of days in a month if needed.

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SELECT Datediff(day,
(Convert(DateTime,Convert(varchar(2),Month(getdate()))+'/01/'+Convert(varchar(4),Year(getdate())))),
(Convert(DateTime,Convert(varchar(2),Month(getdate())+1)+'/01/'+Convert(varchar(4),Year(getdate()))))) as [No.of Days in a Month]
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SELECT DAY(SUBDATE(ADDDATE(CONCAT(YEAR(NOW()), '-', MONTH(NOW()), '-1'), INTERVAL 1 MONTH), INTERVAL 1 DAY))

Nice 'n' Simple and does not require creating any functions

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This is for SQL Server; I've never heard of a subdate function. –  LittleBobbyTables Oct 11 '12 at 14:29

Solution 1: Find the number of days in whatever month we're currently in

DECLARE @dt datetime
SET     @dt = getdate()

SELECT @dt AS [DateTime],
       DAY(DATEADD(mm, DATEDIFF(mm, -1, @dt), -1)) AS [Days in Month]

Solution 2: Find the number of days in a given month-year combo

DECLARE @y int, @m int
SET     @y = 2012
SET     @m = 2

SELECT @y AS [Year],
       @m AS [Month],
       DATEDIFF(DAY,
                DATEADD(DAY, 0, DATEADD(m, ((@y - 1900) * 12) + @m - 1, 0)),
                DATEADD(DAY, 0, DATEADD(m, ((@y - 1900) * 12) + @m, 0))
               ) AS [Days in Month]
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In SQL Server 2012 you can use EOMONTH (Transact-SQL) to get the last day of the month and then you can use DAY (Transact-SQL) to get the number of days in the month.

DECLARE @ADate DATETIME

SET @ADate = GETDATE()

SELECT DAY(EOMONTH(@ADate)) AS DaysInMonth
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+1 Nice and simple solution. :) –  hims056 Feb 2 '13 at 10:51
select  datediff(day, 
        dateadd(day, 0, dateadd(month, ((2013 - 1900) * 12) + 3 - 1, 0)),
        dateadd(day, 0, dateadd(month, ((2013  - 1900) * 12) + 3, 0))
        )

Nice Simple and does not require creating any functions Work Fine

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For any date

select DateDiff(Day,@date,DateAdd(month,1,@date))
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Much simpler...try day(eomonth(@Date))

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I think your answer is the best one, so simple. Thanks! –  Ofear Feb 19 at 7:16
    
Only works with 2012 but still good –  RustyH Jun 5 at 14:37

Most elegant solution: works for any @DATE

DAY(DATEADD(DD,-1,DATEADD(MM,DATEDIFF(MM,-1,@DATE),0)))

Throw it in a function or just use it inline. This answers the original question without all the extra junk in the other answers.

examples for dates from other answers:

SELECT DAY(DATEADD(DD,-1,DATEADD(MM,DATEDIFF(MM,-1,'1/31/2009'),0))) Returns 31

SELECT DAY(DATEADD(DD,-1,DATEADD(MM,DATEDIFF(MM,-1,'2404-feb-15'),0))) Returns 29

SELECT DAY(DATEADD(DD,-1,DATEADD(MM,DATEDIFF(MM,-1,'2011-12-22'),0))) Returns 31

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