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I want to display all customers and their addresses and the number and total sum of their orders. My query looks like this:

select *, sum(o.tota), count(o.total) 
from customer c 
natural join orders o
group by c.custId;

which works fine.

but if I add a new table to the query:

select *, sum(o.tota), count(o.total) 
from customer c 
natural join orders o
natural join cust_addresses a
group by c.custId;

then it won't work anymore. the aggregate functions return wrong values because there may be multiple addresses per customer, which is correct, I also want to display all their addresses. What can I do to solve the aggregate function problem?

I could think of doing something like:

select *, (select total from orders o where o.custid=c.custid), ..
from customer c 
natural join orders o
natural join cust_addresses a
group by c.custId;

But this is very slow.

EDIT I now tried the following but it tells me that field c.custid is unknown:

select *
from
     customer c,               
     left join (select sum(o.tota), count(o.total) from orders o where o.custid=c.custid) as o
where ...
group by c.custId;
share|improve this question
    
How do you want to handle customers that have no orders? Your current query omits them. –  Mark Byers Jul 26 '10 at 11:31
    
year right, I forgot the left for the left join :) –  codymanix Jul 26 '10 at 11:53

2 Answers 2

up vote 2 down vote accepted

Simple solution: Use two queries.

Otherwise you can do your aggregated calculation in a subquery (on the whole table, not per row) then JOIN the result of the subquery with the addresses table to get your extra data. Try this:

SELECT *
FROM customer T1
LEFT JOIN
(
    SELECT custId,
           SUM(total) AS sum_total,
           COUNT(total) AS count_total
    FROM orders
    -- WHERE ...
    GROUP BY custId
) T2
ON T1.custId = T2.custId
-- WHERE ...
share|improve this answer
    
Thanks for the answer. I tried it now but it didn't work for me. it seems I cannot access the outer tables from within the subselect. See my edits please. –  codymanix Jul 26 '10 at 11:06
    
@codymanix: You can't access an alias from an inner query in an outer query. –  Mark Byers Jul 26 '10 at 11:15
    
No I want to access an alias from the outer query in the inner query. I want to use the customer c which is defined in the outer query in the where clause of the inner query. –  codymanix Jul 26 '10 at 11:20
    
@codymanix: Why do you want to do that? If custId is a PK for the customer table, doesn't it just give the same result in the end? –  Mark Byers Jul 26 '10 at 11:26
    
@codymanix: Your question is not clear. Perhaps you could state your full requirements and explain why this answer doesn't meet those requirements. –  Mark Byers Jul 26 '10 at 12:01

Try something like:

select c.custId, max(c.custName) custName, ...
       a.addrId, max(a.addrLine1) addrLine1, ...
       sum(o.total) order_total, count(o.total) order_count
from customer c 
left join orders o on c.custId = o.custId
left join cust_addresses a on c.custId = a.custId
group by c.custId, a.addrId;

assuming you want all customers, whether or not they have any orders or addresses.

share|improve this answer
    
But then the sum and count is not displayed correctly if the customer has more than one order or address. –  codymanix Jul 26 '10 at 15:46
    
@codymanix, did you include the cust_address key field (which I have called addrId, since you haven't posted the table structure) in the group by clause of your query? If so, the sum and count should be returned correctly. –  Mark Bannister Jul 26 '10 at 16:15
    
but then I have multiple rows for one customer returned. –  codymanix Jul 30 '10 at 13:44
    
@codymanix: yes, where there is more than one address per customer, you will get one line per address per customer. You explicitly said in your question that you wanted to display "all their addresses"; this query resolves the aggregate function problem and displays all their addresses. –  Mark Bannister Jul 30 '10 at 14:18

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