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I have a question about a specific query I'm writing in a SQL Server 2008 database. This is part of a (much) larger query, but I'll simplify the hell out of it to make it easier to isolate what I'm trying to do.

I have a table TableX, two columns:

  • IDX (int) identity
  • VarX (varchar(20))

I have two auxiliary tables, TableY and TableZ. Both have two columns,

TableY
  • IDY (int) identity
  • VarY (varchar(20))

    and TableZ

  • IDZ (int) identity

  • VarZ (varchar(20))

I am doing an insert into a fourth table, we'll call it TableA. TableA has three columns:

  • IDA (int) identity
  • IDY (int)
  • IDZ (int)

The IDY and IDZ fields in this table are foreign keys to the identity columns in Table Y and Table Z.

Sounds complicated, but its a really simple connection. Here's where it gets fun though.

So the data in TableX might look like this:

IDX | VarX
--------------
1   | ABC
2   | ABC-LMN

The data in TableY:

IDY | VarY
----------------
1   |ABC
2   | HIJ

The data in TableZ:

IDZ | VarZ
----------------
1   | LMN
2   | OPQ

Basically, VarX (the second column), is either going to be a single varchar string, or two connected by a hyphen, no spaces. In the case of a single string, with no hyphen, its always a match in Table Y. The match would be on VarY in TableY = VarX in TableX. I would grab the associated ID (IDY), and use that in the insert on TableA.

In the example of row 1, the insert into TableA would be (null, 1, null)

Now in the case of row 2, it has two strings separated by a hyphen. So the insert into TableA would ultimately be (null, 1, 1).

So my question is this... how do I formulate the insert with its corresponding joins to deal with this type of logic? I'm sure it has to be a case statement... just having alot of trouble visualizing the full query, as I'm no DBA.... Any help is appreciated.

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2 Answers

up vote 2 down vote accepted

There's no need to make this dynamic SQL, unless the proc this is part of requires it.

INSERT INTO TableA (IDY,IDZ)
SELECT ty.IDY, tz.IDZ
FROM TableX tx
LEFT JOIN TableY ty ON ty.VarY =
   (CASE WHEN CHARINDEX('-', tx.VarX) = 0 THEN tx.VarX
   ELSE LEFT(tx.VarX, CHARINDEX('-', tx.VarX) - 1) END)
LEFT JOIN TableZ tz ON tz.VarZ =
   CASE WHEN CHARINDEX('-', tx.VarX) = 0 THEN NULL
   ELSE RIGHT(tx.VarX, LEN(tx.VarX) - CHARINDEX('-', tx.VarX)) END

I have intentionally omitted inserting NULL in to TableA.IDA, as I don't know why you'd want to try inserting NULL in to an identity column, or if that's even possible. I have also assumed that the data in VarX will not have degenerate cases, such as '-', 'ZXC-', 'ASD-BNM ', etc.

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Sorry the inserting null thing was just to visualize the fact that the first column was an identity. I am omitting it from the actual insert as well. Couldnt think of how to write it out so it made sense :) –  optionsix Jul 6 '12 at 20:02
    
Also you are correct... it will always either be one char string that matches something, or two sep by hyphen that always match something. –  optionsix Jul 6 '12 at 20:03
    
@optionsix - Sounds good, just wanted to cover the bases for those coming across the question in the future. –  Esoteric Screen Name Jul 6 '12 at 20:04
    
worked like a charm. Thanks! –  optionsix Jul 6 '12 at 20:06
    
@optionsix Cheers mate, glad to help. –  Esoteric Screen Name Jul 6 '12 at 20:07
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I changed it, it seems that it can be simplified to this:

DECLARE @x TABLE (IDX INT, VarX VARCHAR(20))
INSERT @x VALUES (1, 'ABC'), (2, 'ABC-LMN')

DECLARE @y TABLE (IDY INT, VarY VARCHAR(20))
INSERT @y VALUES (1, 'ABC'), (2, 'HIJ')

DECLARE @z TABLE (IDZ INT, VarZ VARCHAR(20))
INSERT @z VALUES (1, 'LMN'), (2, 'OPQ') 

DECLARE @a TABLE (IDA INT IDENTITY(1, 1), IDY INT, IDZ INT)

INSERT      @a
SELECT      y.IDY,
            z.IDZ
FROM        @x x
LEFT JOIN   @y y ON y.VarY = LEFT(x.VarX, LEN(y.VarY))
LEFT JOIN   @z z ON z.VarZ = RIGHT(x.VarX, LEN(z.VarZ)) AND CHARINDEX('-', x.VarX) <> 0

 SELECT  *
 FROM    @a
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I hope you noticed VarX & VarY are both of type varchar(20). I am not sure if assumption of 3 characters works! –  Akhil Jul 6 '12 at 19:54
    
Akhil is correct, my example is 3 char - 3 char, but that's just an example. Could be up to 8 on each side of the hyphen –  optionsix Jul 6 '12 at 19:56
    
Sorry, I was being a bit hasty, it is working now. –  Ivan G Jul 6 '12 at 20:26
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