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This question follows up this great answer: T-SQL XML Query, how to seperate matching nodes into individual rows? What if the values where:

   <child>
    <name>Fred</name>
    <sname>Flintstone</name>
   </child>
   <child>
    <name>Bill</name>
    <sname>Gates</name>
   </child>

And I wanted the output to be like:

Fred
Flintstone
Bill
Gates

Or even better, this:

name: Fred
sname: Flintstone
name: Bill
sname: Gates

(all in one column)

-->Since I can't answer my own question for the next 3 hours, I'll edit my question as suggested by stackoverflow. Here's my answer to my own question:

I've figured it out! :-) So I'm obliged to share my own solution. Here it is:

SELECT
  distinct childs.value('fn:local-name(.)', 'nvarchar(50)') + '=' + childs.value('(text())[1]', 'varchar(50)') as Children
FROM  
  #t CROSS APPLY
  data.nodes('//parent/child/*') AS Children(childs)  

Thanks anyone for having a look at my question!

share|improve this question
1  
Your question was not clear. marc_s's solution will produce desired output. Also, the last answer, Mikael Eriksson's answer is published 12m before you edited your question (by adding your solution). I think you should choose one of these answers as a solution for your question. –  Bogdan Sahlean May 5 '12 at 16:49
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2 Answers

declare @XML xml
set @XML = 
'<child>
  <name>Fred</name>
  <sname>Flintstone</sname>
 </child>
 <child>
   <name>Bill</name>
   <sname>Gates</sname>
 </child>'

select N.value('concat(local-name(.),": ",.)', 'varchar(max)')
from @XML.nodes('/child/*') as T(N)

Result:

name: Fred 
sname: Flintstone 
name: Bill 
sname: Gates 

Update:
Using a table and a guaranteed order by

declare @XML xml
set @XML = 
'<child>
  <name>Fred</name>
  <sname>Flintstone</sname>
 </child>
 <child>
   <name>Bill</name>
   <sname>Gates</sname>
 </child>'

declare @T table (ID int identity primary key, XMLColumn xml)
insert into @T values(@XML)
insert into @T values(@XML)

select ID,
       Names
from
  (
    select ID,
           N.value('concat(local-name(.),": ",.)', 'varchar(max)') as Names,
           row_number() over(partition by ID order by T.N) as rn
    from @T
      cross apply XMLColumn.nodes('/child/*') as T(N)
  ) T
order by ID, rn 
share|improve this answer
    
Concerning the order of the result, this is even better. Thanks Mikael! –  stakes May 5 '12 at 17:03
    
@stakes Without a order by the order of the rows is arbitrary. There is no guarantee that the order will always be what you see not. What order do you want? There is a trick if you want to the order the nodes appear in the XML. –  Mikael Eriksson May 5 '12 at 18:09
    
I want the order to be like you posted, the order of the nodes indeed. I'm very curious about the trick, what is it? –  stakes May 7 '12 at 6:54
    
@stakes - It is in the update I posted. Using row_number() over the shredded XML column T.N. Read more about it here. –  Mikael Eriksson May 7 '12 at 11:23
    
nice, thanks again! –  stakes May 8 '12 at 11:48
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This gives you the two-columns per <child> output :

DECLARE @input XML = '<child>
    <name>Fred</name>
    <sname>Flintstone</sname>
   </child>
   <child>
    <name>Bill</name>
    <sname>Gates</sname>
   </child>'

SELECT
    'name: ' + child.value('(name)[1]', 'varchar(50)'),
    'sname: ' + child.value('(sname)[1]', 'varchar(50)')
FROM @input.nodes('/child') AS nodes(child)

Output is:

name: Fred  |  sname: Flintstone
name: Bill  |  sname: Gates

If you want just one column, you can use this instead:

SELECT
    'name: ' + child.value('(name)[1]', 'varchar(50)')
FROM @input.nodes('/child') AS nodes(child)

UNION

SELECT
    'sname: ' + child.value('(sname)[1]', 'varchar(50)')
FROM @input.nodes('/child') AS nodes(child)

and this gives you this output:

(No column name)
name: Bill
name: Fred
sname: Flintstone
sname: Gates
share|improve this answer
    
Thanks Marc. It is still not exactly what I want, but in the mean time I already figured it out. See my own answer... :-S –  stakes May 5 '12 at 15:53
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