Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to write a function in mySQL that takes two dates(startDate and endDate) as parameters. It then calculates the days in each month.

The database contains a targetRevenue table that has got the target revenue values for each month and year.

id  month   year  targetRev
25    1       2012    1000.00
26    2       2012    5000.00
27    3       2012    8000.00

The function finds the revenue for a month based on the number of days in it and then returns the total.

Example : startDate : 2012-01-19 endDate : 2012-03-24 Function returns [ targetRev(19 days in Jan) + targetRev(29 days Feb) + targetRev(24days in March)]

I am new to writing functions in mysql , so a little bit of help to get me started would be very useful. Thanks in advance!

share|improve this question

3 Answers 3

up vote 2 down vote accepted

If instead of your month and year columns, you represented the month of each record in your targetRevenue table by a DATE column containing the first day of each month:

ALTER TABLE targetRevenue
  ADD COLUMN first DATE;

UPDATE targetRevenue
  SET first = STR_TO_DATE(CONCAT_WS('-', year, month, 1), '%Y-%c-%e');

ALTER TABLE targetRevenue
  DROP COLUMN year,
  DROP COLUMN month;

You could then obtain the total target revenue for your project (assuming it is inclusive of both start and end date) with:

-- calculate the summation of
SELECT SUM(CONVERT(

         -- number of project days in month...
         GREATEST(0,
           -- ...is calculated as the difference between...
           DATEDIFF(
             -- ...the last day of the project in this month...
                LEAST('2012-03-24', LAST_DAY(first)),
             -- ...and the first day of the project in this month...
             GREATEST('2012-01-19', first)
           )
           -- ...plus one because first and last project days were inclusive
           + 1
         )

         -- multiply by the target revenue for this month
         * targetRev

         -- divide by the number of days in the month
         / DAY(LAST_DAY(first)),

         -- convert result to fixed-point format, to two d.p.
         DECIMAL(11,2)

       )) AS total

FROM   targetRevenue

-- only perform for months in which the project was active
WHERE  '2012-01-19' <= LAST_DAY(first) AND first <= '2012-03-24'

See it on sqlfiddle.

If you can't change the schema, you could replace references to first with the value to which that column was updated above.

share|improve this answer
    
Thanks so much!! This is indeed a very useful solution and it works exactly the way I wanted it to:) If I were to use a function for doing this, that accepts two dates as parameters and returns the revenue total, could I update the value of first in the function and not make any changes to the schema? –  user1611418 Aug 29 '12 at 13:39
    
@user1611418: You wouldn't need to perform any update, but rather calculate the value of first in the query. It'll just perform slower than the above, that's all. –  eggyal Aug 29 '12 at 13:43

For this you can use SUM() function like:

SELECT SUM(targetRev) from your_table
WHERE  date_column BETWEEN your_startDate_column AND your_endDate_column;

you need not to calculate days of each month..

share|improve this answer
    
Thanks for your suggestion. But the reason I would need to calculate days in each month is because, the target_Revenue values in the table are for the entire month , so if a date is something like 24-03-2012, first I would need to calculate the mar revenue as (24* target_revenue)/31 –  user1611418 Aug 29 '12 at 12:11

Use this query like this

SELECT   SUM(targetRev), MONTH(date_column) as mo
from     your_table
WHERE    date_column BETWEEN your_startDate AND your_endDate
GROUP BY mo;

This will give the result for each month total revenue (use like this logic)

If it is two different years you can use like

concat(year(date_column),month(date_column)) as mo
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.