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So I have a work order table with 3 fields relevant to the question being asked here (dbo.workorder with some sample values):

location | supervisor | ownergroup
ABC-123  | JSMITH     | ALPHA
XYZ-987  | JDOE       | OMEGA
ABC-123  | NULL       | NULL
XYZ-987  | NULL       | NULL

The last two rows are to show that sometimes the supervisor/ownergroup is not filled out when inserting a workorder row which leads to the question! I have another table called "roles" with rows such as below:

role          | value
ABCSupervisor | JSMITH
ABCOwnergroup | ALPHA
XYZSupervisor | JDOE
XYZOwnergroup | OMEGA

As you can see from the "roles" table, a role is made up of the first 3 letters of the location (ALWAYS) plus the word Supervisor or Ownergroup. When the 3rd and 4th rows of the "workorder" table are inserted, I'd like to develop a trigger that would attempt to fill in the values for Supervisor/Ownergroup IF there is a match in the "roles" table. If there isn't a supervisor/ownergroup for that location prefix, then it should default to a set value (let's say supervisor='super' and ownergroup='og'). Here's what I have so far, though perhaps a different approach would be better:

CREATE TRIGGER [dbo].[OwnergroupSupervisor]
   ON  [dbo].[workorder]
   AFTER INSERT,UPDATE
AS 
BEGIN
    SET NOCOUNT ON;

    UPDATE wo
        SET wo.ownergroup= (THIS IS WHERE I NEED HELP)

    FROM dbo.workorder AS wo INNER JOIN inserted AS i ON wo.wonum=i.wonum
    WHERE wo.ownergroup IS NULL
END
GO

I'm guessing an IF EXISTS or a CASE of some sort? Probably involving something like LEFT(wo.location,3)+'Ownergroup' perhaps?

Any and all help is greatly appreciated! Thanks!


Clarification: wonum is the primary key for the "workorder" table. I am joining the "inserted" table (which contains the rows that are being inserted or updated) to the "workorder" table so that I am only updating the new/updated rows and not the entire "workorder" table. Nothing in my question right now has anything to do with the "roles" table. See update 1 below for a better understanding of what I'm doing...
Update 1:

I've worked out one solution, but if there is nothing in the "roles" table, it just leaves the supervisor/ownergroup null instead of changing it to a default value. I can deal with this for now, but would like a better option. Here's what I have:

CREATE TRIGGER [dbo].[OwnergroupSupervisor]
   ON  [dbo].[workorder]
   AFTER INSERT,UPDATE
AS 
BEGIN
    SET NOCOUNT ON;

    UPDATE wo
        SET wo.ownergroup=(SELECT value FROM roles WHERE role=LEFT(wo.location,3)+'Ownergroup')     
    FROM dbo.workorder AS wo INNER JOIN inserted AS i ON wo.wonum=i.wonum
    WHERE wo.ownergroup IS NULL

    UPDATE wo
        SET wo.supervisor=(SELECT value FROM roles WHERE role=LEFT(wo.location,3)+'Supervisor')     
    FROM dbo.workorder AS wo INNER JOIN inserted AS i ON wo.wonum=i.wonum
    WHERE wo.supervisor IS NULL
END

I have not worked out what would happen if two rows were found in the roles table (although I'm pretty sure the application restricts this so it should be OK). But as I mentioned above, this just keeps the supervisor/ownergroup NULL if no role is found in the roles table.

share|improve this question
    
1st step - rebuild your tables to keep logically separate data in separate columns - i.e. keep the ABC portion in a separate column (in both tables). –  Damien_The_Unbeliever Feb 27 '12 at 19:05
    
@Damien_The_Unbeliever: Unfortunately this is not an option because the database structure is dictated by the application (IBM's Maximo asset management platform). –  D.R. Feb 27 '12 at 19:39
    
If it's not a database under your control, would it not be better to implement view(s) that make your queries work, and leave the underlying tables in control of the (mad) system that doesn't populate them properly? –  Damien_The_Unbeliever Feb 27 '12 at 20:16

2 Answers 2

up vote 2 down vote accepted

How you can update the workorder table based on information in roles is as below:

update wo
set ownergroup = isnull(r.value, 'og')
from workorder wo
  left outer join roles r on r.role = left(wo.location, 3) + 'Ownergroup'
where wo.ownergroup is null

Then you can do a similar update for the Supervisor role.

In theory, the full answer is something like:

create trigger [dbo].[ownergroupsupervisor]
   on  [dbo].[workorder]
   after insert,update
as 
begin
    set nocount on;

    update wo
    set wo.ownergroup= isnull(r.value, 'og')
    from dbo.workorder as wo 
      inner join inserted as i on wo.wonum=i.wonum
      left outer join roles r on r.role = left(wo.location, 3) + 'Ownergroup'
    where wo.ownergroup is null

    -- Repeat for Supervisor
end
go
share|improve this answer
    
I updated my question to reflect my clarification. Sorry about the misunderstanding! –  D.R. Feb 27 '12 at 19:48
    
I realised I'd overlooked the default value so I've added that into my solution - think this covers it –  kaj Feb 27 '12 at 19:59
    
That looks perfect! –  D.R. Feb 27 '12 at 20:10

I'm not sure what column wonum is (though I assume it's the work order #), and if it joins them, but if it does you look like you want to update your ownergroup with the value column from the roles table

CREATE TRIGGER [dbo].[OwnergroupSupervisor]
   ON  [dbo].[workorder]
   AFTER INSERT,UPDATE
AS 
BEGIN
    SET NOCOUNT ON;

    UPDATE wo
        SET wo.ownergroup= r.value
    FROM
       dbo.workorder AS wo 
    INNER JOIN
       inserted AS i ON wo.wonum=i.wonum
    join
       roles r
          on left(wo.location,3) + 'Ownergroup'=r.role
    WHERE
      wo.ownergroup IS NULL
END

GO

If i'm misunderstanding what you want please let me know.

share|improve this answer
    
Sorry...wonum is the primary key field that joins the "inserted" table on the "workorder" table so that the trigger is only executing on the inserted/updated rows. I'm not joining the roles table at all in my example –  D.R. Feb 27 '12 at 19:38
    
Ok, i changed my example to reflect this. –  Phil Vollhardt Feb 27 '12 at 19:52
    
That all looks right. I accepted KAJ's answer because it addressed the issue of a role not existing and therefore inserting a default value. –  D.R. Feb 27 '12 at 20:11
    
yeah, looks good! –  Phil Vollhardt Feb 28 '12 at 4:35

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