Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

A new requirement has come into an existing application. Current, we have an organization table, and it has a child table CalendarEvents. Now, the request is to allow either the User table, the Organization table, or the Division table own calendar events. I am thinking something needs to change because right now, this would leave me with creating the following table structure:

  • Organization (organization_id)
  • User (user_id, organization_id)
  • Division (division_id),
  • Calendar (calendar_id, organization_id, user_id, division_id),
  • CalendarEvents (calendar_event_id, calendar_id)

I am trying to avoid linking Calendar to multiple parents. Is there are better way to do this that I am missing? (An organization/user/division can have multiple calendars, but only one org/user/division can own a calendar)

Thanks for any input.

share|improve this question
    
What's the relationship between users, divisions, and organizations? –  Mike Sherrill 'Cat Recall' Apr 9 '11 at 1:46
    
Organization to user is 1 to many. Divisions are not yet implemented, but those will probably 1 to many with an Organization, and probably 1 to many with users, but maybe many to many. –  Ryan Apr 11 '11 at 15:22

4 Answers 4

up vote 2 down vote accepted

Since User instances and Organization instances can have their own events, I'd be inclined to make separate tables:

Organization
OrganizationCalendarEvents (with FK to Organization)
User
UserCalendarEvents (with FK to User)

In this way, the two entities can control their own events. In addition, if you keep the structure the same, you could use a single base class in your middle-tier which can load from either table.

share|improve this answer

If the CalendarEvents for each entity (User, Organization, and Division) are mutually exclusive, I might start out with three identical tables of events: UserCalendarEvents, OrganizationCalendarEvents, and DivisionCalendarEvents.

A better solution, though, may be to define those as three tables of links:

UserCalendarEvents
  user_id
  calendar_event_id

OrganizationCalendarEvents
  organization_id
  calendar_event_id

DivisionCalendarEvents
  division_id
  calendar_event_id
share|improve this answer

Yes. There is a technique called "morphing" which is appropriate for your case. Your CalendarEvents table should have a field called "owner_type" and another field called "owner_id". "owner_type" would indicate the table to which "owner_id" is a foreign key for the particular row. If owner_type is 1, then owner_id is a user_id; if owner_type is 2, then owner_id is an organization_id. And so forth.

share|improve this answer
2  
What are the odds that every query ever written by any consumer will respect the owner_type column? You can't join here, so you're either writing three queries and branching in your code, or executing two queries every time. No thanks. –  Alain Collins Apr 8 '11 at 22:57
    
I was also thinking of going this route, which would have been a cleaner version of my initial solution. It still left me with the issue of having to write more logic into the queries than I wanted. Thanks though. –  Ryan Apr 11 '11 at 15:20

One table column for many fk tables? .

and

multiple tables need one to many relationship .

If you want the DBMS to enforce the integrity rule that any calendar event is always either for an X, or a Y, or a Z (and just one of them), then you'll have to create three tables.

You can always create a view of "all calendar events" by UNIONing them together (after projecting away the owner column, of course). Obviously, that view is not updatable.

If you set up three separate tables with only a "link" to a "shared" events table, you still won't be guarded from having "orphaned" events.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.