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I am trying to calculate number of users, cumulatively for the dellstore2 database. Looking at answers here, and other forums, I used this

select 
date_trunc('month',orderdate),
sum(count(distinct(customerid)))
   over (order by date_trunc('month',orderdate))
from orders group by date_trunc('month',orderdate)

This returns

2004-01-01 00:00:00.0   979
2004-02-01 00:00:00.0   1,952
2004-03-01 00:00:00.0   2,922
2004-04-01 00:00:00.0   3,898
2004-05-01 00:00:00.0   4,873
2004-06-01 00:00:00.0   5,846
2004-07-01 00:00:00.0   6,827
2004-08-01 00:00:00.0   7,799
2004-09-01 00:00:00.0   8,765
2004-10-01 00:00:00.0   9,745
2004-11-01 00:00:00.0   10,710
2004-12-01 00:00:00.0   11,681

Each month is

979
973
970
976
975
973
981
972
966
980
965
971

It seems to be totaling fine, looking at the first few items. But when I ran

select count(distinct(customerid)) from orders

for the entire thing, I get

8996

which does not agree with the last item in the first output 11,681. I guess the calculation above cannot determine uniqueness across months. What is the fastest way for this calculation, preferably without using self-joins?

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1  
Did some customers buy things more than once? In different months? –  Nikola Markovinović Jun 12 '12 at 11:18
    
@NikolaMarkovinović you are right about that, you should make that comment an answer... –  Nikola Bogdanović Jun 12 '12 at 11:32
    
@pOcHa Od svih gradova, moj omiljeni Niš.... :-) –  Nikola Markovinović Jun 12 '12 at 11:50
    
@NikolaMarkovinović hahaha, još smo i imenjaci, a popićemo verovatno po zastavicu što ne pričamo na engleskom ;-) –  Nikola Bogdanović Jun 12 '12 at 12:14
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1 Answer

up vote 5 down vote accepted

Instead of selecting directly from orders, you could use a subquery like so:

SELECT  OrderDate,
        SUM(COUNT(DISTINCT customerid)) OVER (ORDER BY OrderDate)
FROM    (   SELECT  CustomerID, 
                    DATE_TRUNC('MONTH', MIN(OrderDate)) AS OrderDate
            FROM    Orders
            GROUP BY CustomerID
        ) AS Orders
GROUP BY OrderDate

I think this would work as required.

http://sqlfiddle.com/#!1/7a8cc/1

EDIT

If you still needed both methods (i.e. distinct and running total) you could use this:

SELECT  OrderDate,
        COUNT(DISTINCT CustomerID) AS MonthTotal,
        SUM(COUNT(DISTINCT customerid)) OVER (ORDER BY OrderDate) AS CumulativeTotal,
        SUM(COUNT(DISTINCT CASE WHEN OrderNumber = 1 THEN customerid END)) OVER (ORDER BY OrderDate) AS CumulativeDistinctTotal
FROM    (   SELECT  CustomerID, 
                    OrderDate,
                    ROW_NUMBER() OVER(PARTITION BY CustomerID ORDER BY OrderDate) AS OrderNumber
            FROM    Orders
        ) AS Orders
GROUP BY OrderDate

Example here:

http://sqlfiddle.com/#!1/7a8cc/10

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2  
+1 - Very nice thinking batman. –  MatBailie Jun 12 '12 at 11:37
    
that indeed works, and i have no idea why. :) i will try to understand it. thx. –  user423805 Jun 12 '12 at 12:14
1  
The first one works because rather than using COUNT(DISTINCT CustomerID) to remove the duplicates, the duplicates are removed by grouping the dataset being counted so you would get the same results without DISTINCT in the count. The second one is basically the same as your original query with an additional ROW_NUMBER column added to the set, this is used to identify the first order for each customer, so it is possible to count all orders, and distinct customers. –  GarethD Jun 12 '12 at 12:19
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