Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I’m looking to split '1,2,3,4,5,6,7,8,9,10,11,12,13,14,15...' (comma delimited) into a table or table variable.

Does anyone have a function that returns each one in a row?

share|improve this question
2  
I recently performed a minor study comparing the most common approaches to this problem, that may be worth a read: sqlperformance.com/2012/07/t-sql-queries/split-strings and sqlperformance.com/2012/08/t-sql-queries/… –  Aaron Bertrand Aug 2 '12 at 16:00
1  
possible duplicate of Split string in SQL –  Luv Jul 10 '13 at 4:35

14 Answers 14

up vote 68 down vote accepted

Erland Sommarskog has maintained the authoritative answer to this question for the last 12 years: http://www.sommarskog.se/arrays-in-sql.html

It's not worth reproducing all of the options here on StackOverflow, just visit his page and you will learn all you ever wanted to know.

share|improve this answer
22  
A URL is not an answer IMO –  Damien Dec 23 '13 at 4:40

Here is somewhat old-fashioned solution:

/*
    Splits string into parts delimitered with specified character.
*/
CREATE FUNCTION [dbo].[SDF_SplitString]
(
    @sString nvarchar(2048),
    @cDelimiter nchar(1)
)
RETURNS @tParts TABLE ( part nvarchar(2048) )
AS
BEGIN
    if @sString is null return
    declare	@iStart int,
    		@iPos int
    if substring( @sString, 1, 1 ) = @cDelimiter 
    begin
    	set	@iStart = 2
    	insert into @tParts
    	values( null )
    end
    else 
    	set	@iStart = 1
    while 1=1
    begin
    	set	@iPos = charindex( @cDelimiter, @sString, @iStart )
    	if @iPos = 0
    		set	@iPos = len( @sString )+1
    	if @iPos - @iStart > 0			
    		insert into @tParts
    		values	( substring( @sString, @iStart, @iPos-@iStart ))
    	else
    		insert into @tParts
    		values( null )
    	set	@iStart = @iPos+1
    	if @iStart > len( @sString ) 
    		break
    end
    RETURN

END

In SQL Server 2008 you can achieve the same with .NET code. Maybe it would work faster, but definitely this approach is easier to manage.

share|improve this answer
    
Thanks, I would also like to know. Is there an error here? I wrote this code perhaps 6 years ago and it was working OK since when. –  XOR Mar 30 '09 at 17:21
    
I agree. This is a very good solution when you don't want to (or simply can't) get involved with creating table type parameters, which would be the case in my instance. The DBA's have locked that feature and will not allow it. Thanks XOR! –  dscarr Aug 22 '11 at 19:48

Try this

DECLARE @xml xml,@str varchar(100),@delimiter varchar(10)
SET @str= '1,2,3,4,5,6,7,8,9,10,11,12,13,14,15'
SET @delimiter =','
SET @xml = cast(('<X>'+replace(@str,@delimiter ,'</X><X>')+'</X>') as xml)
SELECT C.value('.', 'varchar(10)') as value FROM @xml.nodes('X') as X(C)

OR

DECLARE @str varchar(100),@delimiter varchar(10)
SET @str= '1,2,3,4,5,6,7,8,9,10,11,12,13,14,15'
;with cte as
(
select 0 a, 1 b
union all
select b, charindex(',', @str, b) + len(',')
from cte
where b > a
)
select substring(@str,a,
case when b > len(',') then b-a-len(',') else len(@str) - a + 1 end) value      
from cte where a >0

Many more ways of doing the same is here How to split comma delimited string?

share|improve this answer
1  
Note for anyone searching a general string splitter: The first solution given here is not a general string splitter - it is safe only if you are sure that input will never contain <, > or & (e.g. input is a sequence of integers). Any of above three characters will cause you get a parse error instead of expected result. –  miroxlav Jan 14 at 19:27
    
Event with the issues mentioned by miroxlav (Which should be solvable with some thought), this definitely one of the most creative solutions I have found (The first)! Very nice! –  major-mann Feb 4 at 15:08

This is most like .NET, for those of you who are familiar with that function:

CREATE FUNCTION dbo.[String.Split]
(
    @Text VARCHAR(MAX),
    @Delimiter VARCHAR(100),
    @Index INT
)
RETURNS VARCHAR(MAX)
AS BEGIN
    DECLARE @A TABLE (ID INT IDENTITY, V VARCHAR(MAX));
    DECLARE @R VARCHAR(MAX);
    WITH CTE AS
    (
    SELECT 0 A, 1 B
    UNION ALL
    SELECT B, CONVERT(INT,CHARINDEX(@Delimiter, @Text, B) + LEN(@Delimiter))
    FROM CTE
    WHERE B > A
    )
    INSERT @A(V)
    SELECT SUBSTRING(@Text,A,CASE WHEN B > LEN(@Delimiter) THEN B-A-LEN(@Delimiter) ELSE LEN(@Text) - A + 1 END) VALUE      
    FROM CTE WHERE A >0

    SELECT      @R
    =           V
    FROM        @A
    WHERE       ID = @Index + 1
    RETURN      @R
END

SELECT dbo.[String.Split]('121,2,3,0',',',1) -- gives '2'
share|improve this answer
    
This worked for me after I added GO after the END –  clairestreb Jun 2 at 15:42

http://www.sqlteam.com/forums/topic.asp?TOPIC_ID=50648

A selection of different methods

share|improve this answer

I am tempted to squeeze in my favourite solution. The resulting table will consist of 2 columns: PosIdx for position of the found integer; and Value in integer.


create function FnSplitToTableInt
(
    @param nvarchar(4000)
)
returns table as
return
    with Numbers(Number) as 
    (
    	select 1 
    	union all 
    	select Number + 1 from Numbers where Number < 4000
    ),
    Found as
    (
    	select 
    		Number as PosIdx,
    		convert(int, ltrim(rtrim(convert(nvarchar(4000), 
    			substring(@param, Number, 
    			charindex(N',' collate Latin1_General_BIN, 
    			@param + N',', Number) - Number))))) as Value
    	from   
    		Numbers 
    	where  
    		Number <= len(@param)
    	and substring(N',' + @param, Number, 1) = N',' collate Latin1_General_BIN
    )
    select 
    	PosIdx, 
    	case when isnumeric(Value) = 1 
    		then convert(int, Value) 
    		else convert(int, null) end as Value 
    from 
    	Found

It works by using recursive CTE as the list of positions, from 1 to 100 by default. If you need to work with string longer than 100, simply call this function using 'option (maxrecursion 4000)' like the following:


select * from FnSplitToTableInt
(
    '9, 8, 7, 6, 5, 4, 3, 2, 1, 0, ' + 
    '9, 8, 7, 6, 5, 4, 3, 2, 1, 0, ' +
    '9, 8, 7, 6, 5, 4, 3, 2, 1, 0, ' +
    '9, 8, 7, 6, 5, 4, 3, 2, 1, 0, ' +
    '9, 8, 7, 6, 5, 4, 3, 2, 1, 0'
) 
option (maxrecursion 4000)
share|improve this answer
2  
+1 for mentioning the maxrecursion option. Obviously heavy recursion should be used with care in a production environment, but it's great for using CTEs to perform heavy data import or conversion tasks. –  Tim Medora Feb 19 '11 at 18:29

here is the split function that u asked

CREATE FUNCTION [dbo].[split](
          @delimited NVARCHAR(MAX),
          @delimiter NVARCHAR(100)
        ) RETURNS @t TABLE (id INT IDENTITY(1,1), val NVARCHAR(MAX))
        AS
        BEGIN
          DECLARE @xml XML
          SET @xml = N'<t>' + REPLACE(@delimited,@delimiter,'</t><t>') + '</t>'

          INSERT INTO @t(val)
          SELECT  r.value('.','varchar(MAX)') as item
          FROM  @xml.nodes('/t') as records(r)
          RETURN
        END
execute the function like this
select * from dbo.split('1,2,3,4,5,6,7,8,9,10,11,12,13,14,15',',')
share|improve this answer
    
So simple, worked like a charm –  Dr. ABT Apr 13 at 11:34
DECLARE
    @InputString NVARCHAR(MAX) = 'token1,token2,token3,token4,token5'
    , @delimiter varchar(10) = ','

DECLARE @xml AS XML = CAST(('<X>'+REPLACE(@InputString,@delimiter ,'</X><X>')+'</X>') AS XML)
SELECT C.value('.', 'varchar(10)') AS value
FROM @xml.nodes('X') as X(C)

Source of this response: http://sqlhint.com/sqlserver/how-to/best-split-function-tsql-delimited

share|improve this answer
    
Whilst this may theoretically answer the question, it would be preferable to include the essential parts of the answer here, and provide the link for reference. –  Xavi López Nov 25 '13 at 13:26
1  
@Xavi: ok, I have included the essential parts of the answer. Thanks for your hint. –  Mihai Bejenariu Nov 25 '13 at 13:29

This blog came with a pretty good solution using XML in T-SQL.

This is the function I came up with based on that blog (change function name and result type cast per need):

SET ANSI_NULLS ON
GO
SET QUOTED_IDENTIFIER ON
GO
CREATE FUNCTION [dbo].[SplitIntoBigints]
(@List varchar(MAX), @Splitter char)
RETURNS TABLE 
AS
RETURN 
(
    WITH SplittedXML AS(
        SELECT CAST('<v>' + REPLACE(@List, @Splitter, '</v><v>') + '</v>' AS XML) AS Splitted
    )
    SELECT x.v.value('.', 'bigint') AS Value
    FROM SplittedXML
    CROSS APPLY Splitted.nodes('//v') x(v)
)
GO
share|improve this answer
CREATE Function [dbo].[CsvToInt] ( @Array varchar(4000)) 
returns @IntTable table 
(IntValue int)
AS
begin
declare @separator char(1)
set @separator = ','
declare @separator_position int 
declare @array_value varchar(4000) 

set @array = @array + ','

while patindex('%,%' , @array) <> 0 
begin

select @separator_position = patindex('%,%' , @array)
select @array_value = left(@array, @separator_position - 1)

Insert @IntTable
Values (Cast(@array_value as int))
select @array = stuff(@array, 1, @separator_position, '')
end
share|improve this answer

This is another version which really does not have any restrictions (e.g.: special chars when using xml approach, number of records in CTE approach) and it runs much faster based on a test on 10M+ records with source string average length of 4000. Hope this could help.

Create function [dbo].[udf_split] (
    @ListString nvarchar(max),
    @Delimiter  nvarchar(1000),
    @IncludeEmpty bit) 
Returns @ListTable TABLE (ID int, ListValue nvarchar(1000))
AS
BEGIN
    Declare @CurrentPosition int, @NextPosition int, @Item nvarchar(max), @ID int, @L int
    Select @ID = 1,
   @L = len(replace(@Delimiter,' ','^')),
            @ListString = @ListString + @Delimiter,
            @CurrentPosition = 1 
    Select @NextPosition = Charindex(@Delimiter, @ListString, @CurrentPosition)
   While @NextPosition > 0 Begin
   Set  @Item = LTRIM(RTRIM(SUBSTRING(@ListString, @CurrentPosition, @NextPosition-@CurrentPosition)))
   If      @IncludeEmpty=1 or LEN(@Item)>0 Begin 
     Insert Into @ListTable (ID, ListValue) Values (@ID, @Item)
     Set @ID = @ID+1
   End
   Set  @CurrentPosition = @NextPosition+@L
   Set  @NextPosition = Charindex(@Delimiter, @ListString, @CurrentPosition)
  End
    RETURN
END
share|improve this answer
/* *Object:  UserDefinedFunction [dbo].[Split]    Script Date: 10/04/2013 18:18:38* */
SET ANSI_NULLS ON
GO
SET QUOTED_IDENTIFIER ON
GO
ALTER FUNCTION [dbo].[Split]
(@List varchar(8000),@SplitOn Nvarchar(5))
RETURNS @RtnValue table
(Id int identity(1,1),Value nvarchar(100))
AS
BEGIN
    Set @List = Replace(@List,'''','')
    While (Charindex(@SplitOn,@List)>0)
    Begin

    Insert Into @RtnValue (value)
    Select
    Value = ltrim(rtrim(Substring(@List,1,Charindex(@SplitOn,@List)-1)))

    Set @List = Substring(@List,Charindex(@SplitOn,@List)+len(@SplitOn),len(@List))
    End

    Insert Into @RtnValue (Value)
    Select Value = ltrim(rtrim(@List))

    Return
END
go

Select *
From [Clv].[Split] ('1,2,3,3,3,3,',',')
GO
share|improve this answer
CREATE FUNCTION Split
(
  @delimited nvarchar(max),
  @delimiter nvarchar(100)
) RETURNS @t TABLE
(
-- Id column can be commented out, not required for sql splitting string
  id int identity(1,1), -- I use this column for numbering splitted parts
  val nvarchar(max)
)
AS
BEGIN
  declare @xml xml
  set @xml = N'<root><r>' + replace(@delimited,@delimiter,'</r><r>') + '</r></root>'

  insert into @t(val)
  select
    r.value('.','varchar(max)') as item
  from @xml.nodes('//root/r') as records(r)

  RETURN
END
GO

usage

Select * from dbo.Split(N'1,2,3,4,6',',')
share|improve this answer

You write this function in sql server after that problem will be solved.

http://csharpdotnetsol.blogspot.in/2013/12/csv-function-in-sql-server-for-divide.html

share|improve this answer
    
Dont copy only links... Thats not a sign of good questions... You need to explain anwer in detail –  The Dictator Jan 11 at 6:23

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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