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Here is what I am trying to do: Given a date, a day of the week, and an integer n, determine whether the date is the nth day of the month.

For example:

  • input of 1/1/2009,Monday,2 would be false because 1/1/2009 is not the second Monday

  • input of 11/13/2008,Thursday,2 would return true because it is the second Thursday

How can I improve this implementation?

private bool NthDayOfMonth(DateTime date, DayOfWeek dow, int n)
{
    int d = date.Day;
    return date.DayOfWeek == dow && (d/ 7 == n || (d/ 7 == (n - 1) && d % 7 > 0));
}
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7 Answers 7

up vote 8 down vote accepted

You could change the check of the week so the function would read:

private bool NthDayOfMonth(DateTime date, DayOfWeek dow, int n){
  int d = date.Day;
  return date.DayOfWeek == dow && (d-1)/7 == (n-1);
}

Other than that, it looks pretty good and efficient.

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i think that should be (d-1)/7 == (n-1) –  Kevin Nov 13 '08 at 22:21
    
Thanks for that. Thinking in 0 based counting again. –  Robert Wagner Nov 13 '08 at 22:24

The answer is from this website. Copy/pasted here in case that site is ever lost.

public static DateTime FindTheNthSpecificWeekday(int year, int month,int nth, System.DayOfWeek day_of_the_week)
{
// validate month value
if(month < 1 || month > 12)
{
throw new ArgumentOutOfRangeException("Invalid month value.");
}

// validate the nth value
if(nth < 0 || nth > 5)
{
throw new ArgumentOutOfRangeException("Invalid nth value.");
}

// start from the first day of the month
DateTime dt = new DateTime(year, month, 1);

// loop until we find our first match day of the week
while(dt.DayOfWeek != day_of_the_week)
{
dt = dt.AddDays(1);
}

if(dt.Month != month)
{
// we skip to the next month, we throw an exception
throw new ArgumentOutOfRangeException(string.Format("The given month has less than {0} {1}s", nth, day_of_the_week));
}

// Complete the gap to the nth week
dt = dt.AddDays((nth - 1) * 7);

return dt;
}
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this also does the opposite of what I want –  Kevin Nov 13 '08 at 23:02
    
Whether it was exactly what Kevin needed, this very much what I needed. Thanks for posting it. –  Matthew Nichols Jan 2 '11 at 21:18
    
the check for valid month should be done after the days are added. if(dt.Month != month) is always true after first weekday of month is found –  SQueek Dec 15 at 9:33

Here is what the MSDN have to say. Its VB, but it translates easily.

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that kinda does the opposite of what I want –  Kevin Nov 13 '08 at 22:23
2  
yeah, but its easily reversed ;) –  Andrew Bullock Nov 13 '08 at 22:34

It looks like the language supplies date/day methods for a given date. If anybody was interested you can read about Zeller's congruence.

I don't think that's what they wanted you to do but you could find the day of week of the first day of a month from that. Now that I thought about it you could find the day of week for the given day as N and get that modulo 7.

Oh wait, is that the Nth occurance of a day of the week (like Sunday) or like the Nth weekday of the month! Okay I see the examples.

Maybe it would make a difference if you could construct a date such as the 1st of a month..

Given that it is Nth occurance of a day of the week, and that you can't fiddle with whatever datetime datatype, and that you have access to both a get day of week and get day of month functions. Would Sunday be a zero?

1) First, the day of the week would have to match the day of the week given.
2) N would have to be at least 1 and at most 4.
3) The day of the month would range between n*7*dayOfWeek + 1 and n*7*dayOfWeek + 6 for the same n.
- Let me think about that. If Sunday was the first.. 0*7*0+1 = 1 and Saturday the 6th would be 0*7*0+6.

Think 1 and 3 above are sufficient since a get day of month function shouldn't violate 2.

(* first try, this code sucks *)

function isNthGivenDayInMonth(date : dateTime;
                              dow : dayOfWeek;
                              N : integer) : boolean;
    var B, A : integer (* on or before and after day of month *)
    var Day : integer (* day of month *)
    begin
    B := (N-1)*7 + 1; A := (N-1)*7 + 6;
    D := getDayOfMonth(date);
    if (dow <> getDayOfWeek(date) 
        then return(false)
        else return( (B <= Day) and (A >= Day) );
    end; (* function *)

Hope there isn't a bug in that lol!
[edit: Saturday would have been the 7th, and the upper bound above (N-1)*7 + 7.]
Your solution looks like it would match 2 different weeks? Looks like it would always return zero for Sundays? Should have done pseudocode in C#.. short circuit && is like my if.. hey shouldn't Sunday the first match for N = 1 in months that start on Sunday?

 d/ 7 == n

That would result in (either 0 or 1)/7 == 1, that can't be right! Your || catches the (n-1) also, Robert has that. Go with Robert Wagner's answer! It's only 2 lines, short is good! Having (Day-1) mod 7
[edit: (Day-1) div 7] eliminates my unnecessary variables and 2 lines of setup.

For the record this should be checked for boundary cases and so forth like what if August 31st was a Sunday or Saturday.
[edit: Should have checked the end of week case too. Sorry!]

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You can find a function which returns a date for the nth occurrence of particular week day in any month.

See http://chiragrdarji.wordpress.com/2010/08/23/find-second-saturday-and-fourth-saturday-of-month/

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In this answer, the following code needs to be flipped:

// Complete the gap to the nth week
dt = dt.AddDays((nth - 1) * 7);

if(dt.Month != month)
{
// we skip to the next month, we throw an exception
throw new ArgumentOutOfRangeException(”The given month has less than ” nth.ToString() ” ”
day_of_the_week.ToString() “s”);
}
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Most of the answers above are partially accurate or unnecessarily complex. You could try this simpler function, which also checks if the given date is the last but Nth day of the month.

    public static bool IsNthDayofMonth(this DateTime date, DayOfWeek weekday, int N)
    {
        if (N > 0)
        {
            var first = new DateTime(date.Year, date.Month, 1);
            return (date.Day - first.Day)/ 7 == N - 1 && date.DayOfWeek == weekday;
        }
        else
        {

            var last = new DateTime(date.Year, date.Month, 1).AddMonths(1).AddDays(-1);
            return (last.Day - date.Day) / 7 == (Math.Abs(N) - 1) && date.DayOfWeek == weekday;
        }
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