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SQL Server 2005/2008.

I've searched and read several questions here and elsewhere and in BOL, but none I've found so far directly answer this question.

Given

declare @xml xml = '<Root> <Ent foo="abc" bar="def" /> </Root>'

Is there a way to get a result set of something like

col1        col2
-----------------
foo         abc
bar         def

I know how to do this by using sp_xml_preparedocument and OPENXML, I'm just wondering if there's a way to do it directly using the xml methods. I haven't been able to find anything in BOL or Googling, but just wanted to make sure I didn't miss something.

Thanks!

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Does this question and answer help? stackoverflow.com/questions/324289/… –  Andrew Oct 10 '11 at 15:44
    
Sorry, it's at times like these I realize things I left out. As with the calls to sp_xml_preparedocument and OPENXML, I'm trying to do this in T-SQL. –  vr8ce Oct 10 '11 at 16:55
    
SQL Server does, within T-SQL, have a subset of XQuery available. That's why I pointed at that particular question. I haven't had time to look into your inquiry further, but it seems like the purpose of the earlier question was similar to the purpose of your current question. –  Andrew Oct 10 '11 at 17:04
    
Yes, it does appear it was the purpose, but it's not in T-SQL, and I have not been able to coax the T-SQL XML methods into doing anything like what is in that question. Hence my question. –  vr8ce Oct 10 '11 at 20:41

2 Answers 2

up vote 2 down vote accepted

In general, query() method works slower then value(). So i recommend use value() method:

 SELECT
    b.value('local-name(.)','nvarchar(MAX)') as col1,
    b.value('data(.)','nvarchar(MAX)') as col2
FROM @xml.nodes('//Root/Ent/@*') a(b)

Comparing with previous answer, it is about 3 times faster.

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This is a much better solution. +1 –  etliens Oct 11 '11 at 17:20
    
Agreed, and sorry it took so long to say so! –  vr8ce May 8 '13 at 16:01
    
vr8ce , no problem. I hope it was helpful for the author. –  Dalex May 9 '13 at 19:14

This might give you a starting point to get you what you need.

DECLARE @xml xml = N'<Root> <Ent foo="abc" bar="def" /> </Root>';

WITH [Attributes]([xml])
AS
(
    SELECT
        @xml.query
        ('
            for $x in (/Root/Ent/@*)
            return <attribute name="{local-name($x)}" value="{data($x)}"/>
        ')
)
SELECT
    [Attribute].[data].value(N'@name', N'nvarchar(max)') AS [col1],
    [Attribute].[data].value(N'@value', N'nvarchar(max)') AS [col2]
FROM
    [Attributes]
CROSS APPLY
    [xml].nodes(N'attribute') AS [Attribute]([data]);
share|improve this answer
    
Fascinating. That's some serious T-SQL and XML-fu. :) This is what the question Andrew referred was doing, but I wasn't smart enough to translate it into T-SQL. Thanks very much! –  vr8ce Oct 10 '11 at 20:45

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