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I have data that looks like:

OrderID CustomerID  ItemID  ItemName
10000   1234        111111  Product A
10000   1234        222222  Product B
10000   1234        333333  Product C
20000   5678        111111  Product A
20000   5678        222222  Product B
20000   5678        333333  Product C

I want to write a T-SQL query in SQL Server to return the data like this:

<Root>
  <Order>
    <OrderID>10000</OrderID>
    <CustomerID>1234</CustomerID>
    <LineItem>
      <ItemID>11111</ItemId>
      <ItemName>Product A</ItemName>
    </LineItem>
    <LineItem>
      <ItemID>22222</ItemId>
      <ItemName>Product B</ItemName>
    </LineItem>
    <LineItem>
      <ItemID>33333</ItemId>
      <ItemName>Product B</ItemName>
    </LineItem>
  </Order>
  <Order>
    <OrderID>20000</OrderID>
    <CustomerID>5678</CustomerID>
    <LineItem>
      <ItemID>11111</ItemId>
      <ItemName>Product A</ItemName>
    </LineItem>
    <LineItem>
      <ItemID>22222</ItemId>
      <ItemName>Product B</ItemName>
    </LineItem>
    <LineItem>
      <ItemID>33333</ItemId>
      <ItemName>Product B</ItemName>
    </LineItem>
  </Order>
</Root>

I've tried returning the query in XML using:

FOR XML PATH ('Order'), root ('Root')

But that gives me an Order node for each row (6 in total) vs. just an order node for each orderId (2 in total).

Any ideas?

share|improve this question
up vote 14 down vote accepted
select  
    OrderID,
    CustomerID,
    (
        select 
        ItemID,
        ItemName
        from @Orders rsLineItem
        where rsLineItem.OrderID = rsOrders.OrderID
        for xml path('LineItem'), type
    )
from (select distinct OrderID, CustomerID from @Orders) rsOrders
FOR XML PATH ('Order'), root ('Root')
share|improve this answer
    
Thanks Bert. What does 'type' do in the subquery 'for xml path' statement? – jared Jul 25 '12 at 23:05
2  
@jared It means, 'return this as the XML data type.' So in the query above, it's just returning the subquery as a small xml fragment. – Bert Evans Jul 25 '12 at 23:08
    
Awesome. Thanks! – jared Jul 25 '12 at 23:22

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