92

I am working on a SQL query that reads from a SQLServer database to produce an extract file. One of the requirements to remove the leading zeroes from a particular field, which is a simple VARCHAR(10) field. So, for example, if the field contains '00001A', the SELECT statement needs to return the data as '1A'.

Is there a way in SQL to easily remove the leading zeroes in this way? I know there is an RTRIM function, but this seems only to remove spaces.

15 Answers 15

140
select substring(ColumnName, patindex('%[^0]%',ColumnName), 10)
  • 7
    This will have problems when the string is entirely made up of "0", since it will never match a non-"0" character. – Cade Roux Mar 19 '09 at 14:09
  • True. It will return all the unmodified string of zeros in this case. If this is a problem, the return value of patindex will have to be tested against zero. – Ian Horwill Apr 20 '09 at 9:26
  • Nice. Thank you – VISQL Jun 2 '12 at 0:35
  • 1
    Does this actually update the field stored in the column? – Zapnologica Sep 19 '14 at 9:56
  • 1
    Before using this solution, please try to look into Arvo's answer posted here – OscarSosa Jan 17 at 14:31
23
select replace(ltrim(replace(ColumnName,'0',' ')),' ','0')
  • I received "Replace function requires 3 arguments." I believe it should read select replace(ltrim(replace(ColumnName,'0',' ')),' ','0') – brentlightsey Jan 10 '13 at 14:46
  • 4
    This will fail if the value has a space in it. Example: "0001 B" should become "1 B" but will become "10B" instead. – Omaer May 27 '14 at 17:41
  • Like @Omaer mentioned, this is not safe if there are some spaces in string. Improved solution - first replace spaces with char that is unlikely to get in input, and after 0-ltrim, restore back these chars to spaces after. In the end looks quite complex :( Example: select replace(replace(ltrim(replace(replace('000309933200,00 USD', ' ', '|'),'0',' ')),' ','0'), '|', ' ') --> 309933200,00 USD – Robert Lujo Jun 16 '16 at 12:23
4
select substring(substring('B10000N0Z', patindex('%[0]%','B10000N0Z'), 20), 
    patindex('%[^0]%',substring('B10000N0Z', patindex('%[0]%','B10000N0Z'), 
    20)), 20)

returns N0Z, that is, will get rid of leading zeroes and anything that comes before them.

  • 5
    How is it a leading 0 if something comes before it? – xxbbcc Jul 11 '14 at 16:02
4

I had the same need and used this:

select 
    case 
        when left(column,1) = '0' 
        then right(column, (len(column)-1)) 
        else column 
      end
3

If you want the query to return a 0 instead of a string of zeroes or any other value for that matter you can turn this into a case statement like this:

select CASE
      WHEN ColumnName = substring(ColumnName, patindex('%[^0]%',ColumnName), 10) 
       THEN '0'
      ELSE substring(ColumnName, patindex('%[^0]%',ColumnName), 10) 
      END
1

You can use this:

SELECT REPLACE(LTRIM(REPLACE('000010A', '0', ' ')),' ', '0')
0

You can try this - it takes special care to only remove leading zeroes if needed:

DECLARE @LeadingZeros    VARCHAR(10) ='-000987000'

SET @LeadingZeros =
      CASE WHEN PATINDEX('%-0', @LeadingZeros) = 1   THEN 
           @LeadingZeros
      ELSE 
           CAST(CAST(@LeadingZeros AS INT) AS VARCHAR(10)) 
      END   

SELECT @LeadingZeros

Or you can simply call

CAST(CAST(@LeadingZeros AS INT) AS VARCHAR(10)) 
0

To remove leading 0, You can multiply number column with 1 Eg: Select (ColumnName * 1)

  • 2
    What does '1A' * 1 equal? – Jonathan Rys May 17 '18 at 15:29
0

Here is the SQL scalar value function that removes leading zeros from string:

SET ANSI_NULLS ON
GO
SET QUOTED_IDENTIFIER ON
GO
-- =============================================
-- Author:      Vikas Patel
-- Create date: 01/31/2019
-- Description: Remove leading zeros from string
-- =============================================
CREATE FUNCTION dbo.funRemoveLeadingZeros 
(
    -- Add the parameters for the function here
    @Input varchar(max)
)
RETURNS varchar(max)
AS
BEGIN
    -- Declare the return variable here
    DECLARE @Result varchar(max)

    -- Add the T-SQL statements to compute the return value here
    SET @Result = @Input

    WHILE LEFT(@Result, 1) = '0'
    BEGIN
        SET @Result = SUBSTRING(@Result, 2, LEN(@Result) - 1)
    END

    -- Return the result of the function
    RETURN @Result

END
GO
-1

To remove the leading 0 from month following statement will definitely work.

SELECT replace(left(Convert(nvarchar,GETDATE(),101),2),'0','')+RIGHT(Convert(nvarchar,GETDATE(),101),8) 

Just Replace GETDATE() with the date field of your Table.

  • 3
    How exactly does this answer the question? – deutschZuid Aug 18 '14 at 4:23
-1

you can try this SELECT REPLACE(columnname,'0','') FROM table

  • 1
    This will remove 0 irrespective of its position. Question is asking about only leading ones. – Sunil Jan 10 '18 at 2:03
-2
select replace(replace(rtrim(replace(replace(replace(replace(ltrim(replace(replace([COLUMN],' ','[Ltrim]'),[Ltrim],' ')),' ',[Ltrim]),'[Ltrim]',' '),' ','[Rtrim]'),[Rtrim],' ')),' ',[Rtrim]),'[Rtrim]',' ') As Result

This is a Sql script that emulates the functionality of the TRIM command in tsql prior to 2017, its basically the same as the other recomendateions,but the others replace with a single uncommon character which still can occur, '[Rtrim]' or '[Ltrim]' could still occur in text, but replacing hat with a unique text, for example a Guid would solve that problem.

i havent tested it regarding speed

-3
select ltrim('000045', '0') from dual;

LTRIM
-----
45

This should do.

  • 2
    There is no overload for sql server. – BillRob Dec 1 '14 at 17:52
-3

I borrowed from ideas above. This is neither fast nor elegant. but it is accurate.

CASE

WHEN left(column, 3) = '000' THEN right(column, (len(column)-3))

WHEN left(column, 2) = '00' THEN right(a.column, (len(column)-2))

WHEN left(column, 1) = '0' THEN right(a.column, (len(column)-1))

ELSE 

END

  • It's also not dynamic to allow for more than 3 zeroes. – JoeFletch May 31 '17 at 17:43
-3
select CASE
         WHEN TRY_CONVERT(bigint,Mtrl_Nbr) = 0
           THEN ''
           ELSE substring(Mtrl_Nbr, patindex('%[^0]%',Mtrl_Nbr), 18)
       END
  • 1
    You should give explanation with your answers, not just a single code snippet. Also, please format code as code (there's a button along the top of the text-entry box). – David Heyman Nov 29 '16 at 14:31

protected by AZ_ Apr 18 at 14:34

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