8

Say I have 2 tables: Customers and Orders. A Customer can have many Orders.

Now, I need to show any Customers with his latest Order. This means if a Customer has more than one Orders, show only the Order with the latest Entry Time.

This is how far I managed on my own:

SELECT a.*, b.Id
FROM Customer a INNER JOIN Order b ON b.CustomerID = a.Id
ORDER BY b.EntryTime DESC

This of course returns all Customers with one or more Orders, showing the latest Order first for each Customer, which is not what I wanted. My mind was stuck in a rut at this point, so I hope someone can point me in the right direction.

For some reason, I think I need to use the MAX syntax somewhere, but it just escapes me right now.

UPDATE: After going through a few answers here (there's a lot!), I realized I made a mistake: I meant any Customer with his latest record. That means if he does not have an Order, then I do not need to list him.

UPDATE2: Fixed my own SQL statement, which probably caused no end of confusion to others.

  • Your customer table in this example has an OrderId. Is that right? – John Sheehan Dec 1 '08 at 16:43
  • Yes, as implied in the SQL. – alextansc Dec 1 '08 at 16:51
  • If your Customer table has an OrderID your question does not make sense. If it were true, you would be saying that every order has a different customer. Are you sure your Order table does not have a CustomerID? – Martin Brown Dec 1 '08 at 17:24
  • @Martin: ouch, you're right! Man, My mind is really out of it today. :/ – alextansc Dec 1 '08 at 17:27
8

I don't think you do want to use MAX() as you don't want to group the OrderID. What you need is a ordered sub query with a SELECT TOP 1.

select * 
from Customers inner join Orders 
on Customers.CustomerID = Orders.CustomerID
and OrderID = (SELECT TOP 1 subOrders.OrderID 
                    FROM Orders subOrders 
                    WHERE subOrders.CustomerID = Orders.CustomerID 
                    ORDER BY subOrders.OrderDate DESC)
  • Yes, I think your answer is the most correct one so far, the only mistake is that you did not sort the date in descending order. Not to mentioned the most elegant. :) Thanks! – alextansc Dec 1 '08 at 17:25
  • I did do the ordering at first, then I confused myself and thought you wanted the oldest order. I've now updatd my example to be correct. – Martin Brown Dec 1 '08 at 17:28
6

While I see that you've already accepted an answer, I think this one is a bit more intuitive:

select      a.*
           ,b.Id

from       customer a

inner join Order b
on         b.CustomerID = a.Id

where      b.EntryTime = ( select max(EntryTime)
                           from   Order
                           where  Id = b.Id
                         );

I would have to run something like this through an execution plan to see the difference in execution, but where the TOP function is done after-the-fact and that using "order by" can be expensive, I believe that using max(EntryTime) would be the best way to run this.

  • I tried your query, and I find it returning the same result. Nice! I won't switch my answer at the moment though, there's a few other answers here I wanted to test. But, I'll up-vote your answer for now. :) – alextansc Dec 2 '08 at 9:18
  • Surely that sub query's where clause should be CustomerId = a.Id? – Martin Brown Dec 2 '08 at 15:39
4

Something like this should do it:

SELECT X.*, Y.LatestOrderId
FROM Customer X
LEFT JOIN (
  SELECT A.Customer, MAX(A.OrderID) LatestOrderId
  FROM Order A
  JOIN (
    SELECT Customer, MAX(EntryTime) MaxEntryTime FROM Order GROUP BY Customer
  ) B ON A.Customer = B.Customer AND A.EntryTime = B.MaxEntryTime
  GROUP BY Customer
) Y ON X.Customer = Y.Customer

This assumes that two orders for the same customer may have the same EntryTime, which is why MAX(OrderID) is used in subquery Y to ensure that it only occurs once per customer. The LEFT JOIN is used because you stated you wanted to show all customers - if they haven't got any orders, then the LatestOrderId will be NULL.

Hope this helps!

--

UPDATE :-) This shows only customers with orders:

SELECT A.Customer, MAX(A.OrderID) LatestOrderId
FROM Order A
JOIN (
  SELECT Customer, MAX(EntryTime) MaxEntryTime FROM Order GROUP BY Customer
) B ON A.Customer = B.Customer AND A.EntryTime = B.MaxEntryTime
GROUP BY Customer
  • This solution is much faster than the one which was selected by the OP. – Mark Micallef Aug 17 '17 at 2:07
  • This is the better solution as it calculates all the necessary data up front rather than in individually correlated records. – Scott Gartner Apr 12 '18 at 23:25
2

You can use a window function.

SELECT *
  FROM (SELECT a.*, b.*,
               ROW_NUMBER () OVER (PARTITION BY a.ID ORDER BY b.orderdate DESC,
                b.ID DESC) rn
          FROM customer a, ORDER b
         WHERE a.ID = b.custid)
 WHERE rn = 1

For each customer (a.id) it sorts all orders and discards everything but the latest. ORDER BY clause includes both order date and entry id, in case there are multiple orders on the same date.

Generally, window functions are much faster than any look-ups using MAX() on large number of records.

0
SELECT Cust.*, Ord.*
FROM Customers cust INNER JOIN Orders ord ON cust.ID = ord.CustID
WHERE ord.OrderID = 
    (SELECT MAX(OrderID) FROM Orders WHERE Orders.CustID = cust.ID)
  • You are getting the order with the Max OrderID and not the Max EntryTime which may be different. – Martin Brown Dec 1 '08 at 17:06
0

Something like:

SELECT
  a.*
FROM
  Customer a
    INNER JOIN Order b
      ON a.OrderID = b.Id
        INNER JOIN (SELECT Id, max(EntryTime) as EntryTime FROM Order b GROUP BY Id) met
          ON
            b.EntryTime = met.EntryTime and b.Id = met.Id
0

One approach that I haven't seen above yet:

SELECT
     C.*,
     O1.ID
FROM
     dbo.Customers C
INNER JOIN dbo.Orders O1 ON
     O1.CustomerID = C.ID
LEFT OUTER JOIN dbo.Orders O2 ON
     O2.CustomerID = C.ID AND
     O2.EntryTime > O1.EntryTime
WHERE
     O2.ID IS NULL

This (as well as the other solutions I believe) assumes that no two orders for the same customer can have the exact same entry time. If that's a concern then you would have to make a choice as to what determines which one is the "latest". If that's a concern post a comment and I can expand the query if needed to account for that.

The general approach of the query is to find the order for a customer where there is not another order for the same customer with a later date. It is then the latest order by definition. This approach often gives better performance then the use of derived tables or subqueries.

  • I have tested this query, and it works, like the other two answers so far. Would you mind adding how you might handle 2 orders with the exact same entry time? – alextansc Dec 2 '08 at 13:20
  • Interesting. Wouldn't this get exponentially slower for each extra order that a customer has as the database will need to join each order to every other order? – Martin Brown Dec 2 '08 at 15:18
0

This query is much faster than the accepted answer :

SELECT c.id as customer_id, 
    (SELECT co.id FROM customer_order co WHERE 
    co.customer_id=c.id 
    ORDER BY some_date_column DESC limit 1) as last_order_id
    FROM customer c

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