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I have summarize daily data using a basic query and each of them need to be calculated with value of last date from previous month. Example, if I select 3 February 2022, the value should be calculated with the value from 31 January 2022.

This is my current query

SELECT 
    TGL, SUM(A.NOM_IDR) AS TotValue
FROM(
    SELECT 
        B.DATE AS TGL
        , (A.NOMINAL_IDR * -1) as NOM_IDR
    FROM 
        MIS.FACT_LOAN A
    LEFT OUTER JOIN 
        MIS.DIM_PERIOD B ON A.SK_PERIOD = B.SK_PERIOD
    WHERE 
        YEAR(B.DATE) = '2022'
    )
GROUP BY TGL;

and the result is something like this

TGL        | TotValue 
2022-01-31    300000      
2022-02-01    400000      
2022-02-02    200000 
.
.
.
2022-02-26    370000 
2022-03-01    250000

I already trying to get the last date from each month and their TotValue with this query

SELECT
        B.DATE AS LASTDAYPERMONTH
        , SUM(A.NOMINAL_IDR * -1)
     FROM MIS.FACT_LOAN A
     LEFT JOIN 
        MIS.DIM_PERIOD B ON A.SK_PERIOD = B.SK_PERIOD
     INNER JOIN
        (SELECT MAX(B.DATE) AS MaxDatePerMonth
         FROM MIS.FACT_LOAN A
         LEFT JOIN 
            MIS.DIM_PERIOD B ON A.SK_PERIOD = B.SK_PERIOD
         WHERE YEAR(B.DATE) = '2022'
         GROUP BY MONTH(B.DATE)
        ) aa ON aa.MaxDatePerMonth = B.DATE
     WHERE YEAR(B.DATE) = '2022'
     GROUP BY B.DATE

But I dont know how to join it with my current query to achieve my desired result. Below is the example of my desired result

TGL        | TotValue | LastMonthValue
2022-01-31    300000         0
2022-02-01    400000      300000
2022-02-02    200000      300000
.
.
.
2022-02-26    370000      300000
2022-03-01    250000      370000

How can I achieve this result? Please help me to find the right query and sorry if the explanation is a bit awkward.

3

3 Answers 3

2

You can first get the previous month by subtracting INTERVAL 1 MONTH from now() and then pass this as the parameter to LAST_DAY:

SELECT LAST_DAY(now() - INTERVAL 1 MONTH)
9
  • Where can I add this query to? I updated my question can you please take a look at it again?
    – H. D. U.
    Aug 28, 2022 at 15:47
  • @HilmanDhannysworo you can add it to a select clause. For instance, instead of TGL, SUM(A.NOM_IDR) AS TotValue you could have TGL, SUM(A.NOM_IDR) AS TotValue, LAST_DAY(now() - INTERVAL 1 MONTH) AS LastDayOfLastMonth. Or you could add it to the other select, basically wherever you want it. Just make sure to ommit the SELECT keyword from my code if you add the last_day call as a field of an already existing select. Aug 28, 2022 at 15:55
  • @HilmanDhannysworo please let me know if this works for you. If so, you might consider accepting this answer as the correct one. Aug 28, 2022 at 15:56
  • I kept getting error "An unexpected toker "1" was found following.....". Is it because I'm using DB2?
    – H. D. U.
    Aug 28, 2022 at 16:14
  • @HilmanDhannysworo I do not know what query is yielding that error. Please edit your question and add your current try containing the call to LAST_DAY. Aug 28, 2022 at 16:19
1

Try this:

WITH TAB (TGL, TotValue) AS
(
VALUES
  (DATE ('2022-01-31'),    300000)      
, (DATE ('2022-02-01'),    400000)      
, (DATE ('2022-02-02'),    200000) 
, (DATE ('2022-02-26'),    370000) 
, (DATE ('2022-03-01'),    250000)
)
SELECT 
  A.*
, COALESCE (B.TotValue, 0) AS LastMonthValue
FROM TAB A
--LEFT JOIN TAB B ON B.TGL = A.TGL - DAY (A.TGL)
LEFT JOIN TABLE
(
  SELECT B.TotValue
  FROM TAB B
  WHERE B.TGL <= A.TGL - DAY (A.TGL)
  ORDER BY B.TGL DESC
  FETCH FIRST 1 ROW ONLY
) B ON 1=1
ORDER BY A.TGL
TGL TOTVALUE LASTMONTHVALUE
2022-01-31 300,000 0
2022-02-01 400,000 300,000
2022-02-02 200,000 300,000
2022-02-26 370,000 300,000
2022-03-01 250,000 370,000

The LEFT JOIN TABLE algorithm use gets the LASTMONTHVALUE value as "the last value of previous months".

dbfiddle link.

3
  • it works! Just kinda lack in performance. Thank you so much!
    – H. D. U.
    Aug 29, 2022 at 3:15
  • I just realized that my February data only until 26th and not 28th and it causing March's LastMonthValue is 0. Is there anything that I can do to get the 26th value?
    – H. D. U.
    Aug 29, 2022 at 4:58
  • @HilmanDhannysworo look at the updated answer. Aug 29, 2022 at 13:23
0

You can do something like that:

  1. Get current date as string using DATE_FORMAT()
  2. Get first day of current month using RIGHT() and CONCAT()
  3. Convert string to date with STR_TO_DATE()
  4. And subtract one day with INTERVAL

`

SELECT STR_TO_DATE(CONCAT('01', RIGHT(DATE_FORMAT(NOW(), '%d/%m/%Y'), 8)),'%d/%m/%Y') - INTERVAL 1 DAY;

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