Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

Table: FooData

ID   Count
1    54
2    42
3    33
4    25
5    16
6    9
8    5
9    3
10   2

I want to fetch the record that sum of Count column is greater than a certain percentage like 90.

For this example, the sum of all the records is 189, and 90% of it is 170.1, we can see the sum from ID 1 to 6 is 179, and it is greater than 170.1 so the record ID 6 should be returned.

btw, temporary table is not allowed because I need to do it in a function.

share|improve this question
    
An iterator is required. One, set a sum of all the records to a variable from an initial query. Then query the table via a cursor. Each iteration check if the running sum (current record plus any previous records is greater than the passed percentage. If so, stop and return that record ID. –  Jon Raynor Sep 1 '11 at 5:22

2 Answers 2

up vote 1 down vote accepted

Try this:

SELECT TOP 1 
  t2.id,
  SUM(t1.value) AS runningTotal
FROM FooData t1 
INNER JOIN FooData t2 
  ON t1.id <= t2.id 
GROUP BY t2.id
HAVING SUM(t1.value) * 100. / 
  (SELECT SUM(value) FROM @FooData) > 90
ORDER BY SUM(t1.value)

But also be aware of the potential performance issue with triangular joins in running totals.

share|improve this answer

Another version of a triangular join.

declare @T table(ID int primary key, [Count] int)
insert into @T values (1, 54), (2, 42), (3, 33),(4, 25), (5, 16), (6, 9), (8, 5), (9, 3),(10, 2)

;with R(ID, [Count], Running) as
(
  select T1.ID, 
         T1.[Count],
         cast(T3.[Count] as float)
  from @T as T1
    cross apply (select sum(T2.[Count])
                 from @T as T2
                 where T1.ID >= T2.ID) as T3([Count])
),
T(Total) as
(
  select sum([Count])
  from @T
)
select top 1 R.ID, R.[Count], R.Running
from R
  inner join T
    on R.Running / T.Total > 0.9
order by R.ID
share|improve this answer
    
thank you very much for your input, but I preferred the answer from 8kb. –  unruledboy Sep 1 '11 at 6:22

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.