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I have a column with xml data type like this:

       <Test ID="rs232lon">
        <Param Name="corel" Value="0.00000" />
        <Param Name="co2rel" Value="10.8000" />
        <Param Name="hcrel" Value="111.000" />
        <Param Name="o2rel" Value="0.95000" />
      </Test>

How could I get a result with TSQL like this :

corel       co2rel        hcrel        o2rel    
------------------------------------------          
0.00000     10.8000       111.000     0.95000       
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closed as not a real question by marc_s, bmargulies, t0mm13b, KatieK, ElYusubov Jan 20 '13 at 0:02

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1 Answer 1

up vote 1 down vote accepted
DECLARE @CocoJambo TABLE (
    ID INT IDENTITY PRIMARY KEY,
    XmlColumn XML NOT NULL
);

INSERT  @CocoJambo (XmlColumn)
VALUES  (N'<Test ID="rs232lon">
    <Param Name="corel" Value="0.00000" />
    <Param Name="co2rel" Value="10.8000" />
    <Param Name="hcrel" Value="111.000" />
    <Param Name="o2rel" Value="0.95000" />
  </Test>');

SELECT  a.*,
        b.c.value('(Param[@Name="corel"]/@Value)[1]','NUMERIC(38,5)') AS corel,
        b.c.value('(Param[@Name="co2rel"]/@Value)[1]','NUMERIC(38,5)') AS co2rel,
        b.c.value('(Param[@Name="hcrel"]/@Value)[1]','NUMERIC(38,5)') AS hcrel,
        b.c.value('(Param[@Name="o2rel"]/@Value)[1]','NUMERIC(38,5)') AS o2rel
FROM    @CocoJambo a
CROSS APPLY a.XmlColumn.nodes('/Test') AS b(c)

Results:

ID XmlColumn                corel   co2rel   hcrel     o2rel
-- ------------------------ ------- -------- --------- -------
1  <Test ID="rs232lon">...  0.00000 10.80000 111.00000 0.95000
share|improve this answer
    
Also: Replace the precision (38) and scale (5) for NUMERIC data type. –  Bogdan Sahlean Jan 19 '13 at 20:37
    
i have several Test tag that Are distinct by ID , how could i do this in other Test tags –  Sara Jan 20 '13 at 7:20
    
@SaraAlizadeh: You changed the question. You should cancel this change and accept the answer (because it gives the requested results - initial question). Then you could write another question and somebody will give you an answer. Anyway, if you look at my answer and if you read documentation you may find yourself an answer for the second question. –  Bogdan Sahlean Jan 20 '13 at 8:51
    
Thank you for reminder –  Sara Jan 20 '13 at 10:57

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