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I have searched all the SQL questions and I have found every version of what I don't want - so I need to ask. I am in a brain lock - knowing there is a count and sum and group and a join all thrown together.

2 Tables

  1. CustomerTable - CustID, CustQuality (values are good customer, bad customer, new customer etc)
  2. PurchaseTable (PurchID, PurchItem, PurchDate)

I am trying to count how many purchases by Good, Bad, New Customers in the last 30 days.

I have tried the join and group count etc and I keep getting:

  • GoodCustomer - CustID2 - 1 purch
  • GoodCustomer - CustID3 - 3 purch
  • GoodCustomer - CustID4 - 2 purch
  • BadCustomer - CustID7 - 2 purch
  • BadCustomer - CustID1 - 4 purch
  • NewCustomer - CustID9 - 1 purch
  • NewCustomer - CustID4 - 4 purch etc etc.

I just want the overall results

  • 3 Good Customers made 6 Purchases
  • 2 Bad Customers made 6 Purchases
  • 2 New Customers made 5 Purcahses

THEN FOR ADDITIONAL functioning... I have a 3rd table that I need to join as well. CustomerLocation (CLID, CLLocation (values of North, South, East, West))

So if I wanted to know the following break down of the groups

  • 3 Good Customers made 6 Purchases - 1 Customer was from the North, 2 Customers From South
  • 2 Bad Customers made 6 Purchases - 5 Customer from East, 1 West
  • 2 New Customers made 5 Purcahses - 2 Customer from South

And the last new query would be... WHERE CLLocation = South

Or if I wanted to look up by region...

  • 1 Good Customers made 3 Purchases
  • 2 Bad Customers made 2 Purchases
  • 0 New Customers made 0 Purcahses

I KNOW I AM ASKING A LOT - BUT ANY AND ALL HELP WOULD BE GREATLY APPRECIATED!

share|improve this question
    
could you specify the foreign key constraints of you tables? –  rano Nov 4 '12 at 19:58
    
CST.CustID - Primary for Customer, PCHT.PurchID - Primary for Purchase, PCHT.PurchCustID - foreign for Customer, LCT.LCTID - primary for Location, LCT.LCTCustID foreign for Customer –  Oliver Fleener Nov 4 '12 at 20:07

2 Answers 2

up vote 0 down vote accepted
SELECT C.CustQuality, COUNT(DISTINCT c.CustID) AS tot_Customer, COUNT(PurchID) AS tot_Purch
FROM CustomerTable C, PurchaseTable P
WHERE C.CustID = P.PurchCustID
GROUP BY C.CustQuality;

SELECT C.CustQuality, CL.CLocation,  COUNT(DISTINCT c.CustID) AS tot_Customer, COUNT(PurchID) AS tot_Purch
FROM CustomerTable AS C, PurchaseTable AS P, CustomerLocation AS CL
WHERE C.CustID = P.PurchCustID AND CL.LCTCustID = C.CustID
GROUP BY C.CustQuality, CL.CLocation;

SELECT C.CustQuality, CL.CLocation,  COUNT(DISTINCT c.CustID) AS tot_Customer, COUNT(PurchID) AS tot_Purch
FROM CustomerTable AS C, PurchaseTable AS P, CustomerLocation AS CL
WHERE C.CustID = P.PurchCustID AND CL.LCTCustID = C.CustID AND CL.CLocation='North'
GROUP BY C.CustQuality;
share|improve this answer
    
COUNT(DISTINCT c.CustID) keeps throwing me the error missing operator? –  Oliver Fleener Nov 4 '12 at 20:31
    
I just figured out why... I am writing the code via SQL but actually using access for the testing model. Access does not "like" distinct. Bummer! –  Oliver Fleener Nov 4 '12 at 20:35
    
if you can try to avoid ACCESS : D –  rano Nov 4 '12 at 20:37
    
agreed! your code worked well as did Lukas - i just created (Select Distinct customerquality etc) in the from and it finally worked! Thanks much to you both! –  Oliver Fleener Nov 4 '12 at 20:55

This should answer your first question

SELECT COUNT(DISTINCT c.CustID), CustQuality, COUNT(PurchID) FROM CustomerTable c
INNER JOIN PurchaseTable p ON c.CustID = p.CustID
GROUP BY CustQuality
share|improve this answer
    
Thanks for the quick reply... I tried it but keep getting "missing operator" in COUNT(DISTINCT c.CustID) –  Oliver Fleener Nov 4 '12 at 20:15
    
there was a typo, sorry, the * was wrong, does it work now? –  Lukas Winzenried Nov 4 '12 at 20:18
    
I saw that and fixed it in the original but I keep getting the same error COUNT(DISTINCT c.CustID) for some reason... driving me nuts! Same as Rano's above. –  Oliver Fleener Nov 4 '12 at 20:32
    
I just figured out why... I am writing the code via SQL but actually using access for the testing model. Access does not "like" distinct. Bummer! –  Oliver Fleener Nov 4 '12 at 20:35

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