-1

I am trying to get RANK() on a column based on a row difference < 3.

select hotel.*,
IFNULL(datediff(visit_date, lag(visit_date)
OVER (partition by hotel_id)), 0) as diff
from hotel;

I get the following output,

hotel_id customer_id  visit_date  diff
1            1        2020-01-01    0
1            2        2020-01-03    2
2            1        2020-01-01    0
2            2        2020-01-10    9
2            3        2020-01-14    4
3            1        2020-01-04    0
3            1        2020-01-11    7

I am stuck with the RANK() part.

Expected Output: If Day Difference is less than 3 then 1 else 2. And if the next one is greater than 3 days the 3, and so on

hotel_id customer_id  visit_date  rank
1            1        2020-01-01    1
1            2        2020-01-03    1
2            1        2020-01-01    1
2            2        2020-01-10    2
2            3        2020-01-14    3
3            1        2020-01-04    1
3            1        2020-01-11    2
  • You say "If Day Difference is less than 3 then 1 else 2" but the last entry in your table has rank = 3 how does that work? – Nick Apr 19 at 23:12
  • @Nick It is my SQL. Also, yes! If Day Difference is less than 3 then 1 else 2, 3, 4 and so on. The increase in rank happens only when day diff is not less than 3 – Amogh Katwe Apr 20 at 0:06
  • So what happens if the diff goes back down to < 3, is the rank supposed to start counting up again from 2 after that? – Nick Apr 20 at 0:15
  • @Nick When rank = 3, and the next customer_id day difference < 3 then Rank still remains 3. – Amogh Katwe Apr 20 at 0:17
1

You can use this query to generate your rank values. It uses a couple of CTEs, the first to generate row numbers for each visit (on a per-hotel basis), and the second (recursive) CTE to generate the rank values, iterating through the rows from the first CTE and only incrementing the rank when the difference in dates is more than 2 days:

WITH RECURSIVE hotel_rows AS (
  SELECT hotel_id, customer_id, visit_date,
         ROW_NUMBER() OVER (PARTITION BY hotel_id ORDER BY visit_date) AS rn
  FROM hotel
  ORDER BY hotel_id, visit_date
),
ranks AS (
  SELECT hotel_id, customer_id, visit_date, rn, 1 AS `rank`
  FROM hotel_rows
  WHERE rn = 1
  UNION ALL
  SELECT h.hotel_id, h.customer_id, h.visit_date, h.rn,
         r.rank + (h.visit_date > r.visit_date + INTERVAL 2 DAY)
  FROM hotel_rows h
  JOIN ranks r ON h.hotel_id = r.hotel_id
              AND h.rn = r.rn + 1
)
SELECT SELECT hotel_id, customer_id, visit_date, `rank`
FROM ranks
ORDER BY hotel_id, visit_date

Output (for my slightly extended demo):

hotel_id    customer_id     visit_date  rank
1           1               2020-01-01  1
1           2               2020-01-03  1
2           1               2020-01-01  1
2           2               2020-01-10  2
2           3               2020-01-14  3
2           1               2020-01-15  3
2           2               2020-01-20  4
3           1               2020-01-04  1
3           1               2020-01-11  2

Demo on dbfiddle

| improve this answer | |
  • Correction. If Day Difference is less than 3 then 1 else 2, 3, 4 and so on. The increase in rank happens only when day diff is not less than 3 – Amogh Katwe Apr 20 at 0:10
  • @AmoghKatwe please see my edit. I think that will do what you want. – Nick Apr 20 at 0:41
  • @AmoghKatwe no worries - I'm glad I could help. – Nick Apr 20 at 1:05
0

If you want the result as per your given condition then you can try below in SQL Server. here is the Demo

select
  hotel_id, 
  customer_id, 
  visit_date,
  case 
    when days < 3 then 1
    else 2
  end as rnk
from
(
  select
    *,
    datediff(day, n_date, visit_date) as days
  from
  (
      select
        *,
        coalesce(lag(visit_date) over (partition by hotel_id order by visit_date), visit_date) as n_date

      from hotel
  ) val
)days
| improve this answer | |
0

I would express this as:

select h.*,
       (case when lag(visit_date) over (partition by hotel_id order by visit_date) < visit_date - interval 3 day
             then 2 else 1
       end)
from hotel h;

Edit;

Based on your revised point, you want to assign groups based on the date difference and then use row_number():

select h.*,
       1 + sum( coalesce(visit_date > prev_vd + interval 3 day, 0) ) over (partition by hotel_id order by visit_date) as grp
from (select h.*,
             lag(visit_date) over (partition by hotel_id order by visit_date) as prev_vd
      from hotel h
     ) h;

Here is a db<>fiddle.

| improve this answer | |
  • Correction. If Day Difference is less than 3 then 1 else 2, 3, 4 and so on. The increase in rank happens only when day diff is not less than 3 – Amogh Katwe Apr 20 at 0:11
  • @AmoghKatwe . . . That clarifies a lot -- i see you edited the question. I strongly recommend window functions over recursive CTEs for this type of problem. – Gordon Linoff Apr 20 at 1:16
  • Your approach is partly right. Except, when the value needs to be 1, it's 0, and it's 1 when its supposed to be 2 – Amogh Katwe Apr 20 at 1:30
  • @AmoghKatwe . . . I fixed it -- the answer is simpler than I thought -- and added a db<>fiddle. – Gordon Linoff Apr 20 at 1:41
  • 1
    Definitely agree with you on the "simpler" part. I did a bit of testing with some random data (10000 entries) and it seems the CTE is actually somewhat faster for this particular example. Probably in the noise though. – Nick Apr 21 at 6:43

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.