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Consider this example schema:

Customer ( int CustomerId pk, .... )

Employee ( int EmployeeId pk,
           int CustomerId references Customer.CustomerId, .... )

WorkItem ( int WorkItemId pk,
           int CustomerId references Customer.CustomerId,
           null int EmployeeId references Employee.EmployeeId, .... )

Basically, three tables:

  • A customer table with a primary key and some additional columns
  • A employee table with a primary key, a foreign key constraint reference to the customer tables primary key, representing an employee of the customer.
  • A work item table, which stores work done for the customer, and also info about the specific employee who the work was performed for.

My question is. How do I, on a database level, test if an employee is actually associated with a customer, when adding new work items.

If for example Scott (employee) works at Microsoft (customer), and Jeff (employee) works at StackOverflow (customer), how do I prevent somebody from adding a work item into the database, with customer = Microsoft, and employee = Jeff, which do not make sense?

Can I do it with check constraints or foreign keys or do I need a trigger to test for it manually?

Should mention that I use SQL Server 2008.

UPDATE: I should add that WorkItem.EmployeeId can be null.

Thanks, Egil.

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6 Answers 6

up vote 3 down vote accepted

Wouldn't a foreign key on a composite column (CustomerId, EmployeeId) work?

ALTER TABLE WorkItem
ADD CONSTRAINT FK_Customer_Employee FOREIGN KEY (CustomerId, EmployeeId)
    REFERENCES Employee (CustomerId, EmployeeId);
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Sorry, forgot to mention that WorkItem.EmployeeId can be null. Would the above still work? –  Egil Hansen Jan 31 '09 at 14:14
    
Hmm, not sure; I think some RDBMS can handle that and others can't, and I don't know whether SQL Server can. If not, you could perhaps define a 'No one' employee for each customer. Otherwise a more complex CHECK condition would be needed. –  Kieron Jan 31 '09 at 14:22
    
Ok thanks. So, when I try execute your SQL above, I get the following error message: There are no primary or candidate keys in the referenced table 'Employee' that match the referencing column list in the foreign key 'FK_Customer_Employee'. Whats missing from my Employee table? –  Egil Hansen Jan 31 '09 at 14:31
    
You need to create a unique index on Employee(EmployeeId, CustomerId). Actually, why isn't that your primary key there? –  derobert Jan 31 '09 at 14:51
    
@derobert: Good question. It was not a conscious decision on my part, as I mentioned elsewhere, my SQL knowledge is basic. Thanks for the input! –  Egil Hansen Jan 31 '09 at 15:23

You might be able to do this by creating a view "WITH SCHEMABINDING" that spans those tables and enforces the collective constraints of the individual tables.

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+1: Very creative. I had previously never heard of this solution. // This is a perfect example of why Stackoverflow is so cool. I never would've found this on my own. –  Jim G. Jan 12 '10 at 15:16

Why do you want employeeId to be null int WorkItem? Maybe you should add another table to avoid that particular oddity. From what I can see the easiest thing to do is to add a unique constraint on employeeid in workItem, and maybe even unique on customerId if that is what you want.

A more general way to add constraints spanning many tables is to define a view that should always be empty, and add the constraint that it is empty.

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Sometimes there is no employee associated with a work item, that is why I would like to keep EmployeeId nullable. –  Egil Hansen Jan 31 '09 at 14:47

What are you trying to model here?

  1. You're a contracting agency or the like, and you have a bunch of contractors who are (for some period of time) assigned to a customer.

  2. You're actually storing information about other company's employees (maybe you're providing outsources payroll services, for example).

In case (1), it looks like you have a problem with the Employee table. In particular, when Scott's contract with MS is up and he gets contracted to someone else, you can't keep the historical data, because you need to change the CustomerId. Which also invalidates all the WorkItems. Instead, you should have a fourth table, e.g., CustomerEmployee to store that. Then WorkItem should reference that table.

In case (2), your primary key on Employee should really be CustomerId, EmployeeId. Two customers could have the same employee ID number. Then Kieron's foreign key will work.

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I recently pass to a similar situation, consider the schema: Table company (id_cia PK) Table product_group (id_cia FK to company, id_group PK) Table products (id_group FK to product_group, id_product PK, id_used_by_the_client null)

Rule: The database must allow only one id_used_by_the_client for each product of a company but this filed can be null. Example:

Insert into company (1) = allowed

Insert into company (2) = allowed

Insert into product_group (1, 1) = allowed

Insert into product_group (1,2) = allowed

Insert into product_group (2,3) = allowed

Insert into products values (1, 1, null) = allowed

Insert into products values (1, 2, null) = allowed

Insert into products values (1, 3, 1) = allowed

Insert into products values (1, 4, 1) = not allowed, in the group 1 that belongs to company 1 already exists an id_used_by_the_client = 1.

Insert into products values (2, 4, 1) = not allowed, in the group 2 that belongs to company 1 already exists an id_used_by_the_client = 1.

Insert into products values (3, 4, 1) = allowed, in the group 3 that belongs to company 2 there is no id_used_by_the_client = 1.

I decided to use a trigger to control this integrity.

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Either:

  • make the EmployeeID column the Primary Key of Employee (and possibly an auto-id) and store the EmployeeID in the WorkItem record as a foreign key, instead of storing the Employee and Customer IDs in WorkItem. You can retrieve a WorkItem's Customer details by joining to the Customer table via the Employee table.

Or:

  • make the WorkItem's EmployeeID and CustomerID columns a composite foreign key to Employee.

I favour the first approach, personally.

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Your fist approach do not really fit since there is not always an employee associated with a work item. I am not sure if approach two would work in that scenario either. –  Egil Hansen Jan 31 '09 at 14:50
    
Ah, so a WorkItem always has a Customer but may or may not have an Employee? –  gkrogers Jan 31 '09 at 14:52
    
@gkrogers: Exactly. –  Egil Hansen Jan 31 '09 at 15:44

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