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I have implemented the "MOD 10" check digit algorithm using SQL, for the US Postal Service Address Change Service Keyline according to the method in their document, but it seems I'm getting the wrong numbers! Our input strings have only numbers in them, making the calculation a little easier. When I compare my results with the results from their testing application, I get different numbers. I don't understand what is going on? Does anyone see anything wrong with my algorithm? It's got to be something obvious...

The documentation for the method can be found on page 12-13 of this document: http://www.usps.com/cpim/ftp/pubs/pub8a.pdf

The sample application can be found at: http://ribbs.usps.gov/acs/documents/tech_guides/KEYLINE.EXE

PLEASE NOTE: I fixed the code below, based on the help from forum users. This is so that future readers will be able to use the code in its entirety.

ALTER function [dbo].[udf_create_acs] (@MasterCustomerId varchar(26))
returns varchar(30)
as
begin
	--this implements the "mod 10" check digit calculation
	--for the US Postal Service ACS function, from "Publication 8A"
	--found at "http://www.usps.com/cpim/ftp/pubs/pub8a.pdf"
	declare @result varchar(30)
	declare @current_char int
	declare @char_positions_odd varchar(10)
	declare @char_positions_even varchar(10)
	declare @total_value int
	declare @check_digit varchar(1)

	--These strings represent the pre-calculated values of each character
	--Example: '7' in an odd position in the input becomes 14, which is 1+4=5
	-- so the '7' is in position 5 in the string - zero-indexed
	set @char_positions_odd = '0516273849'
	set @char_positions_even = '0123456789'
	set @total_value = 0
	set @current_char = 1

	--stepping through the string one character at a time
	while (@current_char <= len(@MasterCustomerId)) begin
		--this is the calculation for the character's weighted value
		if (@current_char % 2 = 0) begin
			--it is an even position, so just add the digit's value
			set @total_value = @total_value + convert(int, substring(@MasterCustomerId, @current_char, 1))
		end else begin
			--it is an odd position, so add the pre-calculated value for the digit
			set @total_value = @total_value + (charindex(substring(@MasterCustomerId, @current_char, 1), @char_positions_odd) - 1)
		end

		set @current_char = @current_char + 1
	end

	--find the check digit (character) using the formula in the USPS document
	set @check_digit = convert(varchar,(10 - (@total_value % 10)) % 10)

	set @result = '#' + @MasterCustomerId + '   ' + @check_digit + '#'

	return @result
end
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3 Answers 3

up vote 0 down vote accepted
set @check_digit = convert(varchar, (10 - (@total_value % 10)) % 10)
share|improve this answer
    
DUH! I knew I had something backwards :) Thanks! –  Jasmine Feb 19 '09 at 20:02

I'm not sure why you're messing with the whole string representations when you're working in a set-based language.

I'd probably do it like below. I ran four tests through and they were all successful. You can expand this easily to handle characters as well and you could even make the table permanent if you really wanted to do that.

CREATE FUNCTION dbo.Get_Mod10
(
    @original_string	VARCHAR(26)
)
RETURNS VARCHAR(30)
AS
BEGIN
    DECLARE
    	@value_mapping TABLE (original_char CHAR(1) NOT NULL, odd_value TINYINT NOT NULL, even_value TINYINT NOT NULL)

    INSERT INTO @value_mapping
    (
    	original_char,
    	odd_value,
    	even_value
    )
    SELECT '0', 0, 0 UNION
    SELECT '1', 2, 1 UNION
    SELECT '2', 4, 2 UNION
    SELECT '3', 6, 3 UNION
    SELECT '4', 8, 4 UNION
    SELECT '5', 1, 5 UNION
    SELECT '6', 3, 6 UNION
    SELECT '7', 5, 7 UNION
    SELECT '8', 7, 8 UNION
    SELECT '9', 9, 9

    DECLARE
    	@i				INT,
    	@clean_string	VARCHAR(26),
    	@len_string		TINYINT,
    	@sum			SMALLINT

    SET @clean_string = REPLACE(@original_string, ' ', '')
    SET @len_string = LEN(@clean_string)
    SET @i = 1
    SET @sum = 0

    WHILE (@i <= @len_string)
    BEGIN
    	SELECT
    		@sum = @sum + CASE WHEN @i % 2 = 0 THEN even_value ELSE odd_value END
    	FROM
    		@value_mapping
    	WHERE
    		original_char = SUBSTRING(@clean_string, @i, 1)

    	SET @i = @i + 1
    END

    RETURN (10 - (@sum % 10)) % 10
END
GO
share|improve this answer
    
Well, I did an explicit implementation because I want it to be understandable to programmers in the future, and nobody in this shop speaks SQL. Also, when I did a similar thing as you have, it didn't work. Will try your idea later today and let you know if it works. Thanks! –  Jasmine Feb 19 '09 at 19:46

Why do we have an additional mod:

convert(varchar, 10 % <<-- ?

The document says that only the last digit needs to be subtracted from 10. Did I miss anything?

share|improve this answer
    
The extra mod 10 is so I end up with only the right-most digit. –  Jasmine Feb 19 '09 at 19:45

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