0

I'm trying to create an output where >=200 units have been sold for consecutive dates. I used lead function to get the next start date but unable to get 05/06 end date for 05/04 start date. Do we need some sort of loop?

CREATE TABLE tbl_sls
(date1 date, Sales int);

INSERT INTO sales
(date1, Sales)
VALUES
('2019-05-01', 200),
('2019-05-02', 200),
('2019-05-03', 100),
('2019-05-04', 200),
('2019-05-05', 200),
('2019-05-06', 200),
('2019-05-10', 200),
('2019-05-11', 200),
('2019-05-12', 100);

I've written the below code but cannot get any far.

select date1, sales, rank() over(partition by sales order by date1)
from (
  select a.date1, b.sales from
  (select date1 from sales
  where date1<'2019-05-07') a
  left join
  (select date1, sales from sales
   where sales>=200) b
   on a.date1=b.date1
  ) x

Expected Output:

date_start|date_end
'2019-05-01'|'2019-05-02'
'2019-05-04'|'2019-05-06'
'2019-05-10'|'2019-05-11'
  • Tag your question with the database you are using. – Gordon Linoff May 15 at 20:31
1

This is a gaps-and-isands problem. Here is a solution that uses SQL Server syntax:

select min(date1), max(date1), sales
from (select s.*, row_number() over (partition by sales order by date1) as seqnum
      from sales s
     ) s
group by dateadd(day, - seqnum, date1), sales;

Here is a db<>fiddle. This gives the adjacent values for the same sales number.

This is a better answer to your specific question:

select min(date1), max(date1)
from (select s.*, row_number() over (order by date1) as seqnum
      from sales s
      where sales >= 200
     ) s
group by dateadd(day, - seqnum, date1)
order by 1

And the db<>fiddle.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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