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This question is similar to my last question. Except this time I'm using letters rather than 6 digit integers. I want to find the out of sequence "letters".

Let's say I have the following data:

id | Date | Letter
-----------------------------
01 | 5/1/2009 | X
02 | 5/1/2009 | Y
03 | 5/1/2009 | Z
04 | 5/1/2009 | A
05 | 5/1/2009 | B
06 | 5/1/2009 | D

I would like to be able to come up with a query that would tell me there should be a row with "C" in between row 05 and 06.

In my last question (using INTs) I was offered something similar to the following solution, and it worked great.

SELECT * from TABLE1 t1 
LEFT OUTER JOIN TABLE2 t2 ON t2.INTCol - 1 = t2.INTCol AND t1.date = t2.date
WHERE t2.id IS NULL

Well, with letters (as far as I know) I can't say (G - 1). So, is there another way I can do this?

The database I am using is SQL Server 2005. I believe there is an easy solution in PL/SQL that uses TRANSLATE, but I don't thing I can do anything like using TSQL.

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2 Answers 2

up vote 9 down vote accepted

You can convert the char(1) to its ascii number using

ASCII(Letter)

You can then increment this by one and return it to a letter using CHAR (if necessary), so your code would be this:

SELECT * from TABLE1 t1 
LEFT OUTER JOIN TABLE2 t2 
      ON ASCII(t1.INTCol) - 1 = ASCII(t2.INTCol) 
      AND t1.date = t2.date
WHERE t2.id IS NULL
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Typo, you've got ASCII(t2.INTCol) twice... –  RBarryYoung Jun 2 '09 at 19:28
    
@RBarryYoung - fixed... –  cjk Jun 3 '09 at 7:51

You can use the ASCII() function to convert a character to its ASCII value:

ASCII(Letter)

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