4

Using MS SQL Server, I've got some data in an XML field (called XML), which is structured like this:

<Transaction01>
  <TransactionSetPurpose>Insert</TransactionSetPurpose>
  <POHeader>
    <PO_NBR>LG40016181</PO_NBR>
  </POHeader>
</Transaction01>

I'm trying to create a SQL query to fetch another column called SubmittedDate, along with the PO_NBR from this XML field. Being new to XPath, I've read numerous examples and tried both query and value, but I've not been successful yet. For example:

SELECT SubmittedDate, 
       XML.query('data(/POHeader/PO_NBR)') as PO_NBR
  FROM SubmitXML

This just gives me a empty column. After getting a working test from Quassnoi, I worked from his XML to mine, and discovered the problem is the xmlns and xmlns:i attributes in the root node:

<Transaction01 xmlns="http://services.iesltd.com/" xmlns:i="http://www.w3.org/2001/XMLSchema-instance">

So how do I get around that?

4
SELECT  SubmittedDate, 
        XML.query('data(/Transaction01/POHeader/PO_NBR)') as PO_NBR
FROM    SubmitXML

You original XPath, /POHeader/PO_NBR, assumed that POHeader is the root node (which is not).

A sample query to check:

DECLARE @myxml XML
SET @myxml = '
<Transaction01>
  <TransactionSetPurpose>Insert</TransactionSetPurpose>
  <POHeader>
    <PO_NBR>LG40016181</PO_NBR>
  </POHeader>
</Transaction01>'

SELECT  @myxml.query('data(/Transaction01/POHeader/PO_NBR)')

If Transaction01 is not always the root node (which is not a good thing), use this:

SELECT  SubmittedDate, 
        XML.query('data(/*/POHeader/PO_NBR)') as PO_NBR
FROM    SubmitXML

Generally, XML schema assumes that the tag names are fixed and the variable parts go to the data of the nodes and the attributes rather than into their names, like this:

<Transaction id='01'>
  <TransactionSetPurpose>Insert</TransactionSetPurpose>
  <POHeader>
    <PO_NBR>LG40016181</PO_NBR>
  </POHeader>
</Transaction>

Update:

You should declare the namespaces using WITH XMLNAMESPACES:

DECLARE @myxml XML
SET @myxml = '
<Transaction01 xmlns="http://services.iesltd.com/" xmlns:i="http://www.w3.org/2001/XMLSchema-instance">
  <TransactionSetPurpose>Insert</TransactionSetPurpose>
  <POHeader>
    <PO_NBR>LG40016181</PO_NBR>
  </POHeader>
</Transaction01>'

;
WITH    XMLNAMESPACES
        (
        'http://services.iesltd.com/' AS m
        )
SELECT  @myxml.query
        (
        'data(/*/m:POHeader/m:PO_NBR)'
        )

Update 2:

To sort:

;
WITH    XMLNAMESPACES
        (
        'http://services.iesltd.com/' AS m
        )
SELECT  SubmittedDate, 
        XML.value('(/*/m:POHeader/m:PO_NBR)[1]', 'NVARCHAR(200)') AS po_nbr
FROM    SubmitXML
ORDER BY
        po_nbr
  • Thanks, Quassnoi. I had tried that earlier, and unfortunately it also gives me the blank column. I've read various things that indicate that the root element should be omitted, although I've seen it done both ways. – Mike Hanson Jan 31 '11 at 20:08
  • @marc_s: LG40016181 is hardly an int :) Your query assumes that the @op wants to return the first node instead of concatenating all of them. – Quassnoi Jan 31 '11 at 20:09
  • @Mike: added a sample query. If the root node is called other than Transaction01, use another query (see the post update). – Quassnoi Jan 31 '11 at 20:11
  • @marc_s: Thanks for that, but it also doesn't work. – Mike Hanson Jan 31 '11 at 20:19
  • @Quassnoi: Your test script works just fine, but for some reason my own data does not. – Mike Hanson Jan 31 '11 at 20:25
2

If you want to avoid hardcoding Transaction01, you can try this:

SELECT  SubmittedDate,          
        XML.query('data(//POHeader/PO_NBR)') as PO_NBR 
  FROM  SubmitXML 

E.G:

CREATE TABLE #TEMP (XMLTEXT XML)

INSERT INTO #TEMP 
SELECT '<Transaction01>   <TransactionSetPurpose>Insert</TransactionSetPurpose>   <POHeader>     <PO_NBR>LG40016181</PO_NBR>   </POHeader> </Transaction01> '

SELECT XMLTEXT.query('data(//POHeader/PO_NBR)') as PO_NBR   
 FROM #TEMP
  • Thanks. I had tried that earlier, but it didn't work either. – Mike Hanson Jan 31 '11 at 20:31
  • It turns out I was tripping on namespaces. Thanks for your help! – Mike Hanson Jan 31 '11 at 21:05

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.