Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a table called Item with columns ItemID (PK), ItemName, ExpectedSubItems and another table called SubItem with columns SubItemID (PK), ItemID (FK), SubItemName.

I want to return all rows from Item where the number of SubItems is different from ExpectedSubItems.

I tried to use something like:-

Select * From Item
Join SubItem on Item.ItemID = SubItem.ItemID
Where ExpectedSubItems = Count(SubItem.ItemID)

but that gives me the error:-

An aggregate may not appear in the WHERE clause unless it is in a subquery contained in a HAVING clause or a select list, and the column being aggregated is an outer reference.

Any ideas from the SQL guru's out there?

share|improve this question

5 Answers 5

up vote 1 down vote accepted

you need a sub-query

select *
  from item
  where expectedsubtems <> (
    select count(*)
      from subitem
      where subitem.itemid = item.itemid
    )
share|improve this answer

try:

Select i.ItemId, i.ItemName
From Item i
  Left Join SubItem s
     On s.ItemID  = i.ItemId
Group By i.ItemId, i.ItemName, i.ExpectedSubItems
Having Count(*) <> i.ExpectedSubitems
share|improve this answer
    
You'll need a GROUP BY in there somewhere –  Tom H. Dec 14 '09 at 16:32
    
gawd, this forum is quick... –  Charles Bretana Dec 14 '09 at 16:32
    
Yeah, I'm convinced that some of the responders are actually bots that monitor the forum 24/7 and immediately answer any question :) –  Tom H. Dec 14 '09 at 16:35
1  
could be, I make mistake of using the forum itself as an editor, I post initial response and then edit it over and over until I'm happy with the result.. But lately it seems I get response comments so quickly... So initial answer has to be exactly right (cover ALL the caveats/edge cases etc.) or wait until i've finished editing beefore I post... –  Charles Bretana Dec 14 '09 at 16:38
    
Actually I've bribed one of the SO staff members and they send me a notification when someone starts to type the question. AJAX, you know. –  Quassnoi Dec 14 '09 at 16:39
SELECT  ItemID
FROM    Item
JOIN    SubItem
ON      SubItem.ItemID = Item.ItemID
GROUP BY
        ItemID, ExpectedSubItems 
HAVING  ExpectedSubItems <> COUNT(*)

or this (so that you don't have to group by all Item fields and which also works for 0 expected subitems)

SELECT  Item.*
FROM    Item
CROSS APPLY
        (
        SELECT  NULL
        FROM    SubItem
        WHERE   SubItem.ItemID = Item.ItemID
        HAVING  ExpectedSubItems <> COUNT(*)
        ) S
share|improve this answer

This should do it:

SELECT
     I.item_id,
     I.item_name,
     I.expected_subitems
FROM
     Items I
LEFT OUTER JOIN Sub_Items SI ON
     SI.item_id = I.item_id
GROUP BY
     I.item_id,
     I.item_name,
     I.expected_subitems
HAVING
     COUNT(SI.item_id) <> I.expected_subitems
share|improve this answer
1  
Left Outer join to also get items with no subitems –  Charles Bretana Dec 14 '09 at 16:35
    
Yeah, I was just trying to come up with any easy method that would avoid the problem of an expected_subitems of 1 with no actual subitems. The COUNT(*) would still end up coming back as 1 giving a false positive. –  Tom H. Dec 14 '09 at 16:39
    
Tom H.: you could use COUNT(SubItem.ID) and a LEFT JOIN. –  Quassnoi Dec 14 '09 at 16:40
    
Heh... I knew that as I was making the change I would come back to see that someone had left this comment. :) –  Tom H. Dec 14 '09 at 16:42

Try the following:

select *
  from Item I
  LEFT OUTER JOIN (select ItemID, COUNT(*) as ActualSubItemCount
                     from SubItem
                     group by ItemID) S
    ON (I.ItemID = S.ItemID)
  where (S.ItemID IS NULL AND NVL(I.ExpectedSubItems, 0) <> 0) OR
        I.ExpectedSubItems <> S.ActualSubItemCount;
share|improve this answer

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.