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I have a problem splitting single column values to multiple column values.

For Example:

abcd efgh
ijk lmn opq
asd j. asdjja
asb (asdfas) asd

and I need the output something like this:

first_name             last_name
abcd                     efgh
ijk                      opq
asd                      asdjja
asb                      asd
asd                      null

The middle name can be omitted (no need for a middle name) The columns are already created and need to insert the data from that single Name column.

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Is this something you want to do within SQL Server? In a SELECT statement? In an INSERT or UPDATE statement? More details would help us answer your question – BinaryTox1n Feb 25 '11 at 22:58
that is terrible design for name storage, you should consider having first, last, middle name as separate columns, I hope you don't do any reports off this table that splits names as you requested – Kris Ivanov Feb 25 '11 at 22:58
Need that in a select statement. Actually it is for stored procedure which is inserting the data by selecting values from a table.So I get it in select statement that will be great... – Shahsra Feb 25 '11 at 23:00

4 Answers 4

up vote 8 down vote accepted

Your approach won't deal with lot of names correctly but...

         WHEN name LIKE '% %' THEN LEFT(name, Charindex(' ', name) - 1)
         ELSE name
         WHEN name LIKE '% %' THEN RIGHT(name, Charindex(' ', Reverse(name)) - 1)
FROM   YourTable 
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An alternative to Martin's

select LEFT(name, CHARINDEX(' ', name + ' ') -1),
       STUFF(name, 1, Len(Name) +1- CHARINDEX(' ',Reverse(name)), '')
from somenames

Sample table

create table somenames (Name varchar(100))
insert somenames select 'abcd efgh'
insert somenames select 'ijk lmn opq'
insert somenames select 'asd j. asdjja'
insert somenames select 'asb (asdfas) asd'
insert somenames select 'asd'
insert somenames select ''
insert somenames select null
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So this query works for millions of values in that column I guess right.... – Shahsra Feb 25 '11 at 23:16
@Shahsra - Yes. By definition SQL is a SET-based language so what you do on one record is done on all records equally.. – RichardTheKiwi Feb 25 '11 at 23:18
This appears to just give the forename twice at the moment? – Martin Smith Feb 25 '11 at 23:21
thank you very much Richard...Really appreciate it.... – Shahsra Feb 25 '11 at 23:22
@Martin - thanks for catching it. Fixed now. No longer short :( – RichardTheKiwi Feb 25 '11 at 23:30

What you need is a split user-defined function. With that, the solution looks like

With SplitValues As
    Select T.Name, Z.Position, Z.Value
        , Row_Number() Over ( Partition By T.Name Order By Z.Position ) As Num
    From Table As T
        Cross Apply dbo.udf_Split( T.Name, ' ' ) As Z
Select Name
    , FirstName.Value
    , Case When ThirdName Is Null Then SecondName Else ThirdName End As LastName
From SplitValues As FirstName
    Left Join SplitValues As SecondName
        On S2.Name = S1.Name
            And S2.Num = 2
    Left Join SplitValues As ThirdName
        On S2.Name = S1.Name
            And S2.Num = 3
Where FirstName.Num = 1

Here's a sample split function:

Create Function [dbo].[udf_Split]
    @DelimitedList nvarchar(max)
    , @Delimiter nvarchar(2) = ','
    With CorrectedList As
        Select Case When Left(@DelimitedList, Len(@Delimiter)) <> @Delimiter Then @Delimiter Else '' End
            + @DelimitedList
            + Case When Right(@DelimitedList, Len(@Delimiter)) <> @Delimiter Then @Delimiter Else '' End
            As List
            , Len(@Delimiter) As DelimiterLen
        , Numbers As 
        Select TOP( Coalesce(DataLength(@DelimitedList)/2,0) ) Row_Number() Over ( Order By c1.object_id ) As Value
        From sys.columns As c1
            Cross Join sys.columns As c2
    Select CharIndex(@Delimiter, CL.list, N.Value) + CL.DelimiterLen As Position
        , Substring (
                    , CharIndex(@Delimiter, CL.list, N.Value) + CL.DelimiterLen     
                    , CharIndex(@Delimiter, CL.list, N.Value + 1)                           
                        - ( CharIndex(@Delimiter, CL.list, N.Value) + CL.DelimiterLen ) 
                    ) As Value
    From CorrectedList As CL
        Cross Join Numbers As N
    Where N.Value <= DataLength(CL.List) / 2
        And Substring(CL.List, N.Value, CL.DelimiterLen) = @Delimiter
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;WITH Split_Names (Name, xmlname)
    + REPLACE(Name,' ', '</name><name>') + '</name></Names>') AS xmlname
      FROM somenames

 xmlname.value('/Names[1]/name[1]','varchar(100)') AS first_name,    
 xmlname.value('/Names[1]/name[2]','varchar(100)') AS last_name
 FROM Split_Names

and also check the link below for reference

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