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I am having trouble writing a script which can delete all the rows which match on the first three columns and where the Quantities sum to zero? I think the query needs to find all Products that match and then within that group, all the Names which match and then within that subset, all the currencies which match and then, the ones which have quantities netting to zero.

In the below example, the rows which would be deleted would be rows 1&2,4&6.

Product, Name, Currency, Quantity

1) Product A, Name A, GBP, 10
2) Product A, Name A, GBP, -10
3) Product A, Name B, GBP, 10
4) Product A, Name B, USD, 10
5) Product A, Name B, EUR, 10
6) Product A, Name B, USD, -10
7) Product A, Name C, EUR, 10

Hope this makes sense and appreciate any help.

share|improve this question
    
Unless you add some constraints, this is the Subset Sum problem, which is NP-Hard. – RBarryYoung Sep 28 '13 at 0:23
    
Are there always offsetting rows? What if, for example, you have Product/name currency, with three values -20, -10, and 30? They should all be deleted, or is the record with 30 maybe waiting on a -30? – Jerry Ritcey Sep 28 '13 at 3:19
    
@Jerry, There should never be a situation in which there are three rows with the same values for the product, Name and Currency. – ricky89 Sep 28 '13 at 23:32
up vote 0 down vote accepted

One way to simplify the SQL is to just concatente the 3 columns into one and apply some grouping:

delete from product
where product + name + currency in (
    select product + name + currency
    from product
    group by product + name + currency
    having sum(quantity) = 0)
share|improve this answer
    
Note that "foo" + "bar" is a lot like "foob" + "ar". Matching concatenations do not imply matching columns. – HABO Sep 28 '13 at 0:55
    
@habo I bet you 5¢ there are no collisions in OP's data. – Bohemian Sep 28 '13 at 1:22
    
Thanks Bohemian, worked great!. Although the Issue mentioned by Habo shouldn't be a problem, I added spaces within the concatenation just in case. – ricky89 Sep 28 '13 at 23:23

Try this:

DELETE  
  FROM [Product]
 WHERE Id IN
(
SELECT Id
  FROM 
(
   SELECT Id, SUM(Quantity) OVER(PARTITION BY a.Product, a.Name, a.Currency) AS Sm
    FROM [Product] a

) a
WHERE Sm = 0
)
share|improve this answer
    
+1 for using the too often forgotten PARTITION BY! – Mat's Mug Sep 28 '13 at 0:25

You may want to break this problem into parts.

First create a view that lists those combinations which sum to zero

CREATE VIEW vw_foo AS
SELECT product,name, currency, sum(quantity) as net
FROM foo
GROUP BY product, name, currency
HAVING sum(quantity)=0;

At this point, you need to make sure this view has the data you expect to delete. In you example, the view should have only 2 records: ProductA/NameA/GBP and ProductA/NameB/USD

Step 2. Delete the data where the fields match:

DELETE FROM foo
WHERE EXISTS 
(SELECT *
FROM vw_foo
WHERE vw_foo.product = product
AND vw_foo.name = name
AND vw_currency = currency);
share|improve this answer
    
I like it, and it is not sql server only. – monkeydeveloper Sep 28 '13 at 0:26

I am assuming this is a accounting problem with offsetting pairs of entries in the ledger.

If there are for instance three entries for combination (A, A, GBP) this code and some of the example above will not work.

I create a temporary test table, loaded it with your data, used a CTE - common table expression - to find the duplicate pattern and joined it to the table to select the rows.

Just change the 'select *' to 'delete'.

Again, this only works for equal offsetting pairs. It will cause havoc with odd number of entries.

Do you have only even number of entries?

Sincerely

John

-- create sample table
create table #products
(
  product_id int identity(1,1),
  product_txt varchar(16), 
  name_txt varchar(16), 
  currency_cd varchar(16), 
  quantity_num int
);
go

-- add data 2 table
insert into #products
(product_txt, name_txt, currency_cd, quantity_num)
values
('A',  'A', 'GBP', 10),
('A',  'A', 'GBP', -10),
('A',  'B', 'GBP', 10),
('A',  'B', 'USD', 10),
('A',  'B', 'EUR', 10),
('A',  'B', 'USD', -10),
('A',  'C', 'EUR', 10);
go

-- show the data
select * from #products;
go

-- use cte to find combinations
with cte_Ledger_Offsets (product_txt, name_txt, currency_cd)
as
(
    select product_txt, name_txt, currency_cd
    from #products
    group by  product_txt, name_txt, currency_cd
    having sum(quantity_num) = 0
)
select * from #products p inner join cte_Ledger_Offsets c
on p.product_txt = c.product_txt and
p.name_txt = c.name_txt and 
p.currency_cd = c.currency_cd;
share|improve this answer

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