1

How do we find the continous range of dates from the following scenario?

    Id  modifiedDate  StartDate   EndDate
    1   2019-01-01    2019-01-01  2019-12-31
    1   2019-02-02    2019-02-01  2019-02-28
    1   2019-02-27    2019-01-15  2019-03-15
    1   2019-03-01    2019-03-01  2019-03-12
    2   2019-01-01    2019-01-01  2019-03-01
    2   2019-05-01    2019-05-01  2019-08-01

The Output i want to show is :

       Id  StartDate    EndDate
       1   2019-01-01   2019-01-15
       1   2019-01-15   2019-02-01
       1   2019-02-01   2019-02-28
       1   2019-02-28   2019-03-01
       1   2019-03-01   2019-03-12
       2   2019-01-01   2019-03-01
       2   2019-05-01   2019-08-01

What I have tried so far is :

With X As(
Select a.StartDate,a.EndDate,b.StartDate,b.EndDate
From table a Full Join table b ON a.endDate>b.StartDate
Where a.StartDate<>b.StartDate and b.endDate<>a.Enddate
)
Select StartDate,Enddate,Min(StartDtae)
From X
Group By StartDate,EndDate

But I couldn't get fill the gaps in between the dates. How can I fix this?

3
  • It looks like you want to union the start dates onto the end dates, sort them then take each row's date as the start date and each row+1's date as the end date, am i right? – Caius Jard Aug 7 '19 at 7:09
  • on your row number 4 there is a date '2019-03-15', it is no where in your result...? same on very first row with '2019-12-01' – DarkRob Aug 7 '19 at 7:14
  • MySQL? Oracle? Or MSSQL? – mkRabbani Aug 7 '19 at 7:14
3

You can try this following script I have created with the Help of CTE and Row_Number(). I am getting 2 additional row considering your sample output from the the given input data. If you sample output is correct, you can ignore this solution.

CTE Only worked for MSSQL and Oracle. But you can convert the logic given, for any other databases.

WITH CTE
AS
(
    SELECT DISTINCT id,Date, ROW_NUMBER() OVER(PARTITION BY id ORDER BY Date) RN
    FROM
    (
        SELECT Id,StartDate Date FROM your_table
        UNION ALL
        SELECT Id,EndDate  FROM your_table
    ) A
)

SELECT A.Id, A.Date StartDate,B.Date EndDate 
FROM CTE A
INNER JOIN CTE B ON A.Id = B.Id AND A.RN = B.RN - 1

Output is-

Id  StartDate   EndDate
1   2019-01-01  2019-01-15
1   2019-01-15  2019-02-01
1   2019-02-01  2019-02-28
1   2019-02-28  2019-03-01
1   2019-03-01  2019-03-12
1   2019-03-12  2019-03-15 -- Not exist in your expected output
1   2019-03-15  2019-12-31 -- Not exist in your expected output

Note: Adding an additional Filtering at the as below will give you the exact output you have posted. But take your own decision which one best suits your requirement.

SELECT....
....
FROM CTE A
INNER JOIN CTE B ON A.Id = B.Id AND A.RN = B.RN - 1
WHERE B.DATE <= '2019-03-12' 
13
  • Perfect!! You can add simple WHERE condition to ignore unexpected rows. – Popeye Aug 7 '19 at 7:31
  • @Tejash----ORA-00980 thanks. Can you explain a bit more regarding WHERE? – mkRabbani Aug 7 '19 at 7:32
  • 1
    SELECT A.Id, A.Date StartDate,B.Date EndDate FROM CTE A INNER JOIN CTE B ON A.Id = B.Id AND A.RN = B.RN WHERE B.DATE <= DATE '2019-03-12 – Popeye Aug 7 '19 at 7:34
  • 1
    Just to make it as expected output. But your logic is perfect. – Popeye Aug 7 '19 at 7:36
  • Sorry as I can not understand :( Please tell me the full condition. that will help :) – mkRabbani Aug 7 '19 at 7:36
0

The following query should give you the desired result:

WITH dates AS (SELECT StartDate
                 FROM TABLE
                UNION
               SELECT EndDate + 1
                 FROM TABLE)
SELECT StartDate 
     , (SELECT MIN(StartDate) - 1
          FROM dates b
         WHERE StartDate - 1 > a.StartDate) EndDate
  FROM dates a 
0

Just use lead() with union:

select t.id, t.dte as startdate,
       lead(t.dte) over (partition by t.id order by t.dte) as enddate
from (select distinct t.id, v.dte
      from t cross apply
           (values (startdate), (enddate)) v(dte)
     ) t;

In addition to being concise, this probably has the best performance.

1
  • To make it complex i added one more scenario. for the Id 2 we are getting the 3 rows if we follow the your logic – Naveen132 Aug 8 '19 at 2:25

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