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've been stuck on this all afternoon and finally give up. I need to create monthly invoices for multiple customers regularly every month.

So I have taken the data from [Customers - Main] table and create all the [INVOICES] rows that I need to. However, I cannot get [Customers - Invoices] to populate each invoice correctly. What should happen is that [Invoices - Stock Link] gets populated with the correct information from [Customers - Invoices]. Currently each customers items are all populating 1 invoice.

Here is the code I've reached so far and any help would be gratefully received.

ALTER PROCEDURE [aa test]

AS 

INSERT INTO dbo.[INVOICES] 
(
    CompanyName, InvoiceDate, PurchaseOrderNo, Terms
    , JobNumber, PrintableNotes, Initials
) 
SELECT dbo.[CUSTOMERS - Main].CompanyName
    , DATEADD(d, - 15, DATEADD(mm, DATEDIFF(m, 0, GETDATE()) + 1, 0)) AS Expr1
    , 'test3' AS pono, 7 AS terms, 0 AS jobno
    , 'We will attempt to collect this invoice by Direct Debit' AS printnotes
    , 'KA' AS initials 
FROM dbo.[CUSTOMERS - Main] 
INNER JOIN dbo.[CUSTOMERS - Invoices] 
ON dbo.[CUSTOMERS - Main].CustID = dbo.[CUSTOMERS - Invoices].CustID 
WHERE (dbo.[CUSTOMERS - Invoices].Annual <> 1) And 
    (dbo.[CUSTOMERS - Invoices].DayofMonth = 15) 
GROUP BY dbo.[CUSTOMERS - Main].CompanyName

SELECT @endInvoice=MAX(InvoiceNo) FROM INVOICES 

INSERT INTO dbo.[INVOICES - Stock Link] (InvoiceNo, StockID, SalePrice) 
SELECT @endinvoice, StockID, Price 
FROM dbo.[CUSTOMERS - Invoices]
share|improve this question
    
What database are we talking about? –  Nikola Markovinović Apr 3 '12 at 14:08
4  
Comment since this isn't relevant - please consider using database schemas instead of putting spaces in the table names. –  Nick Vaccaro Apr 3 '12 at 14:22
    
Nikola it's an SQL Server 2005. Norla, I know, it's a legacy database from 1997! That's why there are spaces in the names. It's a big job to change all the views and VBA code that goes with it. –  alcomcomputing Apr 3 '12 at 14:51
1  
I don't have time to do it now. A pointer - you can use OUTPUT clause in insert statement to send "inserted.InvoiceNo" to a table variable. You can use this information in second insert to isolate new invoices. Unfortunately schema is not very friendly because there is no clear way from invoices to [customer - invoices] needed for extra stock data. –  Nikola Markovinović Apr 3 '12 at 15:01
    
I'm not entirely sure of your intent, but using MAX(InvoiceNo) is going to return the last invoice generated from invoices regardless of how many invoices your previous statement makes. –  Tim Lentine Apr 3 '12 at 15:54

1 Answer 1

up vote 5 down vote accepted

You can use an OUTPUT clause as mentioned by Nikola Markovinović:

ALTER PROCEDURE [aa test]

AS

-- Setup storage for the inserted keys
DECLARE @INVOICES TABLE (InvoiceNo int not null primary key)

INSERT INTO dbo.[INVOICES]
(
    CompanyName, InvoiceDate, PurchaseOrderNo, Terms
    , JobNumber, PrintableNotes, Initials
)
-- Grab the inserted keys
OUTPUT INSERTED.InvoiceNo INTO @INVOICES
SELECT dbo.[CUSTOMERS - Main].CompanyName
    , DATEADD(d, - 15, DATEADD(mm, DATEDIFF(m, 0, GETDATE()) + 1, 0)) AS Expr1
    , 'test3' AS pono, 7 AS terms, 0 AS jobno
    , 'We will attempt to collect this invoice by Direct Debit' AS printnotes
    , 'KA' AS initials
FROM dbo.[CUSTOMERS - Main]
INNER JOIN dbo.[CUSTOMERS - Invoices]
ON dbo.[CUSTOMERS - Main].CustID = dbo.[CUSTOMERS - Invoices].CustID
WHERE (dbo.[CUSTOMERS - Invoices].Annual <> 1) And
    (dbo.[CUSTOMERS - Invoices].DayofMonth = 15)
GROUP BY dbo.[CUSTOMERS - Main].CompanyName

INSERT INTO dbo.[INVOICES - Stock Link] (InvoiceNo, StockID, SalePrice)
 -- Not sure where StockID and Price come from
SELECT a.InvoiceNo, a.StockID, a.Price
FROM dbo.[CUSTOMERS - Invoices] a
    -- Join on the keys from above
    JOIN @INVOICES b ON a.InvoiceNo = b.InvoiceNo
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.