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I have a table with some dates intervals like this:

|id|group|date_start|date_end|

and I would like to make a view that looks like:

|id|working_days_diff|

and

|id|group|working_days_diff|

How may I do something like this? thanks

I was thinking about a custom function that will loop for each day in the difference and sum if DAYOFWEEK is not saturday and sunday.. but I don't know how to make...

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The algorithm should be similar to the top answer for this question, which asks how to achieve the same using T-SQL. No need for loops. stackoverflow.com/questions/252519/… –  Ian Nelson Nov 15 '11 at 11:17
    
DATEDIFF doesnt exists in db2... you have to make days(date1)-days(date2) and then I can't use that answer.. –  Totty.js Nov 15 '11 at 11:30

5 Answers 5

db2 has a function called: TIMESTAMPDIFF and not DATEDIFF. Use it to find the number of weeks between the dates, then multiply with 5 (weekdays).

 TIMESTAMPDIFF(32,CHAR(TIMESTAMP('2001-09-29-11.25.42.123456') - TIMESTAMP('2001-09-26-12.07.58.123456'))) 

NB: the function is an estimate

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that is not useful.. the error is to big to consider doing this way. we have difference of days of 1, 2, 10, 15, 30 –  Totty.js Nov 15 '11 at 12:10
    
If you cant use estimate then I think your function is the only way. Why does it not work? –  Eystein Nov 15 '11 at 12:40
    
now it works. I don't know nothing about db2 ibm programming so I just looked at other codes to figure out how to do.. finally I've made it... –  Totty.js Nov 15 '11 at 13:44
up vote 1 down vote accepted
CREATE FUNCTION stkqry.WORKING_DAY_DIFF(DATE_START date, DATE_END date)          
RETURNS INTEGER                                            
LANGUAGE SQL
BEGIN
    DECLARE WORKING_DAYS INTEGER DEFAULT 0;
    DECLARE DATE_COUNTER DATE;
    SET DATE_COUNTER = DATE_START;
    WHILE DAYS(DATE_COUNTER) < DAYS(DATE_END) DO
        SET DATE_COUNTER = DATE(days(DATE_COUNTER)+1);

        CASE WHEN DAYOFWEEK_ISO(DATE_COUNTER) = 6 THEN
            SET WORKING_DAYS = WORKING_DAYS;
        WHEN DAYOFWEEK_ISO(DATE_COUNTER) = 7 THEN
            SET WORKING_DAYS = WORKING_DAYS;
        ELSE
            SET WORKING_DAYS = WORKING_DAYS + 1;
        END CASE;
    END WHILE;
    RETURN WORKING_DAYS;
END
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While this may work, look at @Stuart's answer (use a calendar file) - this is of course to include/exclude things like Christmas (and any company-selected holidays). You will also likely get better performance (especially because DB2 can and/or indicies...) –  Clockwork-Muse Nov 15 '11 at 17:15
    
thanks (: ok I already saw it :) –  Totty.js Nov 16 '11 at 8:58

A calendar table makes this sort of query easy (here's a SQL Server specific link):

http://sqlserver2000.databases.aspfaq.com/why-should-i-consider-using-an-auxiliary-calendar-table.html

However, you can build these for any database; below is a link suggesting how to do it for db2:

http://bytes.com/topic/db2/answers/181183-calculating-business-days

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select 
TIMESTAMPDIFF(32,CHAR(
    TIMESTAMP(
        (CHAR(date('2013-09-19') - (DAYOFWEEK_ISO('2013-09-19')-1) DAYS ))||'-00.00.00.000000'
    ) 
    - TIMESTAMP(
        (CHAR(date('2013-09-13') - (DAYOFWEEK_ISO('2013-09-13')-1) DAYS )||'-00.00.00.000000')
    )
))*5 + DAYOFWEEK_ISO('2013-09-19')- DAYOFWEEK_ISO('2013-09-13') 
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Taken from Count work days between two dates

(days(PAID_DATE) - days(SUBMISSION_DATE) + 1) -
((52 * (year(PAID_DATE) - year(SUBMISSION_DATE)) + week(PAID_DATE) - week(SUBMISSION_DATE)) * 2) - 
(case when dayofweek(SUBMISSION_DATE) = 1 then 1 else 0 end) -
(case when dayofweek(PAID_DATE) = 7 then 1 else 0 end)
as SUBMISSION_TO_PAID

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