28

Given a year and calendar week, how can I get the tuesday of that week as a date?

1
  • 10
    What flavor of 'sql?' Aug 16, 2011 at 13:12

10 Answers 10

71

In MySQL the STR_TO_DATE() function can do the trick in just one line!


Example: We want to get the date of the Tuesday of the 32th week of the year 2013.

SELECT STR_TO_DATE('2013 32 Tuesday', '%X %V %W');

would output:

'2013-08-13'

I think this is the best and shortest solution to your problem.

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  • 2
    This was great @indago - exactly what I was looking for. And much more elegant than the other solutions.
    – Voodoo
    Sep 17, 2013 at 1:30
  • 1
    Very elegant! When constructing the YYYYCW string for STR_TO_DATE() then you can use this ... STR_TO_DATE(CONCAT(YEAR(field), LPAD(WEEKOFYEAR(field, 2, '0')).. Apr 16, 2015 at 9:09
  • 4
    I find this useful to me: STR_TO_DATE(CONCAT(YEARWEEK(field, 2), ' Sunday'), '%X%V %W')
    – mtrbean
    May 21, 2015 at 22:44
  • 1
    One may have off-by-one error with this, in order to check ensure that STR_TO_DATE('2013 1 Monday', '%X %V %W') is indeed first week's monday in 2013.
    – Nae
    Sep 26, 2018 at 14:26
  • 1
    @indago I am not arguing about the first Monday of a year. This of course is a fact and I am not arguing about it. But I do argue about the Monday of the first Week of a year. This, since there are weeks that do not start with a Monday, could be parameterized, to give the option, to get either a Monday, obviously the one that falls on the previous year, or null. I believe there are many methods related to time that have that logic, take for example the results of these select week('2020-01-01', 5); gives as a result 1 and select week('2020-01-01', 7); gives as a result 52. Aug 21, 2020 at 16:22
24

Given you have year and cw (calender week) as variables (e.g. from a SELECT statement) you can get the DATE as following:

DATE_SUB(
  DATE_ADD(MAKEDATE(year, 1), INTERVAL cw WEEK),
  INTERVAL WEEKDAY(
    DATE_ADD(MAKEDATE(year, 1), INTERVAL cw WEEK)
  ) -1 DAY),

The phrase DATE_ADD(MAKEDATE(year, 1), INTERVAL cw WEEK) is duplicated; did not want to store a variable. The SQL-Statement worked nicely for me on MySQL.

UPDATE: Just for clarification: WEEKDAY(DATE_ADD(MAKEDATE(year, 1), INTERVAL cw WEEK)) will yield the first day of the week. Substracting a number from it (-1 for Tuesday; -2 for Wednesday and so forth will select a specific day in the week for you). See here.

3
  • 1
    Do note that there are different standards of week numbers! The US system (week with Jan1 = week1) may be different from the ISO system (week with first Thursday of the year = week1). So make sure to test this against your intended definition of a week.
    – Eljakim
    Aug 16, 2011 at 14:37
  • @Eljakim that is correct and actually one of the reasons why week of year arithmetics are somehow poorly supported by MySQL. Best is not to use them at all. In fact migration AWAY FROM week of year is the reason why I wrote that query once.
    – nre
    Aug 16, 2011 at 15:04
  • 1
    Don't use MAKEDATE for this, it will construct wrong dates, especially when you use commercial dates and a calendar week number. For example MAKEDATE(2017, 1) will give you Sun, 01 Jan 2017, while this is actually the 52nd week of 2016 and the first week of 2017 starts at Jan 2nd. Instead use this STR_TO_DATE('2017 1 Monday', '%x %v %W') to get the Monday of the correct week yielding Mon, 02 Jan 2017 Jan 9, 2018 at 10:39
9

The definitions of calendar week I found all said "a period of seven consecutive days starting on Sunday".

The following is MySQL specific... your mileage may vary...

DATE_ADD(MAKEDATE(year, 1), INTERVAL cw WEEK) adds the weeks from the 1st of the year which is not correct...

mysql> select DATE_ADD(MAKEDATE(2011, 1), INTERVAL 1 WEEK);
+----------------------------------------------+
| DATE_ADD(MAKEDATE(2011, 1), INTERVAL 1 WEEK) |
+----------------------------------------------+
| 2011-01-08                                   |
+----------------------------------------------+

By this definition, it is only meaningful to have the calendar week range from 1-53, and have this represent the Sunday of that week. As such, we would add 2 days to the nth Sunday of the year to get Tuesday.

The following gets the date of the first sunday of the year...

mysql> select date_add('2012-01-01', interval (8 - dayofweek('2011-01-01')) % 7 DAY);
+------------------------------------------------------------------------+
| date_add('2012-01-01', interval (8 - dayofweek('2011-01-01')) % 7 DAY) |
+------------------------------------------------------------------------+
| 2012-01-02                                                             |
+------------------------------------------------------------------------+

so this will get the date of the 10th sunday (note interval 9 week since we are already at 1)...

mysql> select date_add( date_add('2010-01-01', interval (8 - dayofweek('2010-01-01')) % 7 DAY) , interval 9 week);
+-----------------------------------------------------------------------------------------------------+
| date_add( date_add('2010-01-01', interval (8 - dayofweek('2010-01-01')) % 7 DAY) , interval 9 week) |
+-----------------------------------------------------------------------------------------------------+
| 2010-03-07                                                                                          |
+-----------------------------------------------------------------------------------------------------+

add 2 more days to get to tuesday...

mysql> select date_add( date_add( date_add('2010-01-01', interval (8 - dayofweek('2010-01-01')) % 7 DAY) , interval 9 week), interval 2 day);
+--------------------------------------------------------------------------------------------------------------------------------+
| date_add( date_add( date_add('2010-01-01', interval (8 - dayofweek('2010-01-01')) % 7 DAY) , interval 9 week), interval 2 day) |
+--------------------------------------------------------------------------------------------------------------------------------+
| 2010-03-09                                                                                                                     |
+--------------------------------------------------------------------------------------------------------------------------------+

or more generally:

select 
date_add( 
    date_add( 
        date_add('<year>-01-01', interval (8 - dayofweek('<year>-01-01')) % 7 DAY) 
        , interval <week-1> week)
    , interval <dayOfWeek> day
);
3

In looking at indago's answer and then doing a bunch of tests, I was getting the following week as the results.

I've made a minor adjustment, and the dates then matched:

SELECT STR_TO_DATE('2019 1 Monday', '%x %v %W') -- beginning of week

SELECT STR_TO_DATE('2019 1 Sunday', '%x %v %W') -- end of week

You can compare the results with here.

1
DELIMITER $$
CREATE FUNCTION fn_yearweek_to_date(
    var_yearweek INTEGER UNSIGNED,
    var_weekday ENUM(
        'Monday',
        'Tuesday',
        'Wednesday',
        'Thursday',
        'Friday',
        'Saturday',
        'Sunday'
        )
    )
RETURNS DATE DETERMINISTIC
BEGIN
    RETURN STR_TO_DATE(CONCAT(var_yearweek, var_weekday), '%x%v%W');
END;
DELIMITER ;

SELECT
    fn_yearweek_to_date(YEARWEEK(NOW(), 1), 'Sunday'),
    fn_yearweek_to_date(YEARWEEK(NOW(), 1), 7)
;
0

Well theoretically you could use DATEPART with the dw parameter to get to find the first tuesday of the month and then add 7*[CalenderWeek] to get the appropriate date

http://msdn.microsoft.com/en-us/library/ms174420.aspx

0

I think it'd be easier to write the logic of the function using php.

If you use a php script, you can put all dates in a format similar to "day-month-year" and use a loop to go through every day (from 1980s to 2038 or from your mysql dates column).

http://www.php.net/manual/en/function.date-format.php

Then use date format on the dates in that loop to convert them to the days of the week.

Here is a listing of things that can be used in date formats. http://www.php.net/manual/en/function.date.php D N l w all help you with day of the week.

0

Given solutions doesn't consider, that the first week of a year may start at the end of december. So we must check, if January 1st belongs to calendarweek of old or new year:

SET @week=1;
SET @year=2014;
SET @x_weeks_after_new_year=DATE_ADD(MAKEDATE(@year, 1), INTERVAL (SELECT IF(WEEKOFYEAR(MAKEDATE(@year, 1))>50 , 0 , -1))+@week WEEK);
SELECT
  CONCAT(@year, '-', @week) WeekOfYear,
  @weekStart:=DATE_SUB(@x_weeks_after_new_year, INTERVAL WEEKDAY(@x_weeks_after_new_year) DAY) Monday,
  DATE_ADD(@weekStart, INTERVAL 6 DAY) Sunday

This will result in:

+------------+------------+------------+
| WeekOfYear |   Monday   |   Sunday   |
+------------+------------+------------+
|   2014-1   | 2013-12-30 | 2014-01-05 |
+------------+------------+------------+
0

Here is a sample that might help:

SET DATEFIRST 1
declare @wk int  set @wk = 33
declare @yr int  set @yr = 2011

select dateadd (week, @wk, dateadd (year, @yr-1900, 0)) - 2 -
     datepart(dw, dateadd (week, @wk, dateadd (year, @yr-1900, 0)) - 4) as date

and the result is:

2011-08-16 00:00:00.000

which is today (Tuesday).

0

The upvoted solution worked for me in 2014 and 2015 but did not work for me in 2016 (possibly because the start of the Year is on Monday and not on Sunday.

I used the following function to correct this:

STR_TO_DATE( CONCAT(mod(day_nr + 1 ,7) , '/', week_nr, '/', year), '%w/%u/%Y')

In my data : day_nr = 0 -> Monday,

day_nr = 6 -> Sunday

So I had to fix that with a mod function

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