Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have a relation

Competitor(PID, EventName, Pname, TeamName, TeamCoach,EventDate, TeamRating).

and I have my FDs

PID -> Pname
PID --> TeamName
TeamName --> TeamCoach
EventName --> EventDate
TeamName, EventName --> TeamRating

which will form into my relations

Competitor(_PID_, Pname, TeamName*)
Team(_TeamName_, TeamCoach)
Event(_EventName_, EventDate)
Rating(_TeamName_*, _EventName_*, TeamRating)
Entry(_PID_*, _EventName_*)

However, since my candidate key is {PID, EventName}, how can the Team relation be in BCNF if TeamName is not even part of the key?

share|improve this question
up vote 2 down vote accepted

A set of FDs as written down in your question, applies to a single relation schema. The set of FDs as they apply to a given relation schema, determines what the keys will be to that relation schema.

For example, your set of 5 FDs corresponds to the 7-column relation schema that you started with. And that set of FDs allows to determine that the key to your 7-column relation schema is indeed {PID EventName}.

But if you split that 7-column schema in parts, then this has its consequences for which FDs are still applicable, and to which of the parts.

For example. Suppose you single out

 Team(_TeamName_, TeamCoach)

and leave

 Competitor(PID, EventName, Pname, TeamName, EventDate, TeamRating).

For each of the individual FDs, you now have to decide to which of the two new relation schemas that individual FD applies.

In the example at hand :

 Team(_TeamName_, TeamCoach)
 TeamName --> TeamCoach

 Competitor(PID, EventName, Pname, TeamName, EventDate, TeamRating)
 PID -> Pname
 PID --> TeamName
 EventName --> EventDate
 TeamName, EventName --> TeamRating

You now have not only two relation schemas, but also two distinct sets of FDs that apply to them, respectively. The teamname->teamcoach FD now no longer applies to the (revised) Competitor relation schema, but only to the Team schema. This allows you to conclude that TeamName will be a key to the Team schema.

BTW it will not always be possible to retain all the FDs that you started out with. An FD whose overall set of attributes (left-hand side plus right-hand side) is such that after the schema split, there no longer is any relation schema that includes all those attributes, such an FD can simply no longer be expressed, and must be reinstated in the resulting design as a database constraint that does not take on the form of an FD (/key). That is the issue of "dependency preservation".

share|improve this answer
    
Thanks Erwin. Also got it clarified with my uni tutor. He said the same thing. – bigubosu Oct 16 '12 at 10:36

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.