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How do I remove the last character in a string in T-SQL?

For example:

'TEST STRING'

to return:

'TEST STRIN'
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15 Answers 15

e.g.

DECLARE @String VARCHAR(100)
SET @String = 'TEST STRING'

-- Chop off the end character
SET @String = Case @String when null then null else (case LEN(@String) when 0 then @String else LEFT(@String, LEN(@String) - 1) end ) end

SELECT @String
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17  
Alternatively: SELECT LEFT(YourColumnName, LEN(YourColumnName) - 1) FROM YourTable – Kyle B. Aug 10 '09 at 20:05
6  
Note, this throws an error if your string is empty. – gregmac Jan 4 '13 at 21:33
    
Thanks for the null catch - ISNULL(LEFT(@String, LEN(@String) - 1),'ErrMsg') will solve – Volvox Apr 18 '13 at 22:57
    
This also works set @String = STUFF(@String,1,1,'') – BornToCode Nov 12 '13 at 13:27
    
@Volvox it will still throw exception if the string is Empty String, i am modifying your answer to handle this scenario. – Imran Rizvi Oct 14 '15 at 14:03

If for some reason your column logic is complex (case when ... then ... else ... end), then the above solutions causes you to have to repeat the same logic in the len() function. Duplicating the same logic becomes a mess. If this is the case then this is a solution worth noting. This example gets rid of the last unwanted comma. I finally found a use for the REVERSE function.

select reverse(stuff(reverse('a,b,c,d,'), 1, 1, ''))
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5  
Note that this code returns NULL if passed a string that is shorter than the delete range specified for STUFF. Wrap it in an ISNULL to get a different output value for the empty string case. – Rozwel May 2 '12 at 14:18
8  
Nice, using this with an outer apply, with a for xml path('') to eliminate a trailing comma. awseome – Tracker1 Sep 27 '12 at 19:02
    
Also the same way as @Tracker1. Unlike anything involving LEN() this gracefully works (without repeating anything) for empty string (especially wrapped in ISNULL()) – gregmac Jan 4 '13 at 21:32
    
It is really remarkable how brutal SQL can be sometimes. This is incredible. – eouw0o83hf Apr 1 '13 at 21:10
    
very clever solution i feel so dumb :D thanks ! – EuphoriaGrogi Aug 10 '15 at 5:44

Try this:

select substring('test string', 1, (len('test string') - 1))
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@Adrien any idea why this seems to give the same result as select substring('test string', 0, len('test string'))? – Louis Jan 23 '13 at 6:37
1  
+1 for brackets around len()-1. I finally managed to succeed my query in a proprietary DB with fuzzy support of SQL standards – Van Jone Sep 26 '13 at 10:04
    
thank you, this worked to remove hyphen form end of string. – stom Jul 29 '15 at 9:50

If your string is empty,

DECLARE @String VARCHAR(100)
SET @String = ''
SELECT LEFT(@String, LEN(@String) - 1)

then this code will cause error message 'Invalid length parameter passed to the substring function.'

You can handle it this way:

SELECT LEFT(@String, NULLIF(LEN(@String)-1,-1))

It will always return result, and NULL in case of empty string.

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If your coloumn is text and not varchar, then you can use this:

SELECT SUBSTRING(@String, 1, NULLIF(DATALENGTH(@String)-1,-1))
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If you want to do this in two steps, rather than the three of REVERSE-STUFF-REVERSE, you can have your list separator be one or two spaces. Then use RTRIM to trim the trailing spaces, and REPLACE to replace the double spaces with ','

select REPLACE(RTRIM('a  b  c  d  '),'  ', ', ')

However, this is not a good idea if your original string can contain internal spaces.

Not sure about performance. Each REVERSE creates a new copy of the string, but STUFF is a third faster than REPLACE.

also see this

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Get the last character Right(@string, len(@String) - (len(@String) - 1))

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I don't think this is what he was asking, though -- this might be useful to put in a comment, however. – jimwise Jan 24 '13 at 17:02
1  
just Right(@string, 1). – GoalBased Apr 10 '14 at 21:14

I love @bill-hoenig 's answer; however, I was using a subquery and I got caught up because the REVERSE function needed two sets of parentheses. Took me a while to figure that one out!

SELECT
   -- Return comma delimited list of all payment reasons for this Visit
   REVERSE(STUFF(REVERSE((
        SELECT DISTINCT
               CAST(CONVERT(varchar, r1.CodeID) + ' - ' + c.Name + ', ' AS VARCHAR(MAX))
          FROM VisitReason r1
          LEFT JOIN ReasonCode c        ON c.ID = r1.ReasonCodeID
         WHERE p.ID = r1.PaymentID
         FOR XML PATH('')
              )), 1, 2, ''))                        ReasonCode
  FROM Payments p
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You may want to use an outer/cross apply for the composite portion of the query. I'm using this to get a set of flags for a parent item. – Tracker1 Jan 4 '13 at 23:01

you can create function

CREATE FUNCTION [dbo].[TRUNCRIGHT] (@string NVARCHAR(max), @len int = 1)
RETURNS NVARCHAR(max)
AS
BEGIN
    IF LEN(@string)<@len
        RETURN ''
    RETURN LEFT(@string, LEN(@string) - @len)
END
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My answer is similar to the accepted answer, but it also check for Null and Empty String.

DECLARE @String VARCHAR(100)

SET @String = 'asdfsdf1'

-- If string is null return null, else if string is empty return as it is, else chop off the end character
SET @String = Case @String when null then null else (case LEN(@String) when 0 then @String else LEFT(@String, LEN(@String) - 1) end ) end

SELECT @String
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To update the record by trimming the last N characters of a particular column:

UPDATE tablename SET columnName = LEFT(columnName , LEN(columnName )-N) where clause
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Try It :

  DECLARE @String NVARCHAR(100)
    SET @String = '12354851'
    SELECT LEFT(@String, NULLIF(LEN(@String)-1,-1))
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declare @string varchar(20)= 'TEST STRING'
Select left(@string, len(@string)-1) as Tada

output:

Tada
--------------------
TEST STRIN
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select left('TEST STRING', len('TEST STRING')-1)
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declare @x varchar(20),@y varchar(20)
select @x='sam'
select 
case when @x is null then @y
      when @y is null then @x
      else @x+','+@y
end


go

declare @x varchar(20),@y varchar(20)
select @x='sam'
--,@y='john'
DECLARE @listStr VARCHAR(MAX)   

SELECT @listStr = COALESCE(@x + ', ' ,'') +coalesce(@y+',','')
SELECT left(@listStr,len(@listStr)-1)
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I think the existing answers already cover this method. – Sam Aug 15 '13 at 2:16

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