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From the Database Management Systems book: given the relation SNLRWH (each letter denotes an attribute) and the following functional dependencies:

  • S->SNLRWH (S is the PK)
  • R->W

My attempt:

  • First, it is not 3NF: for the second FD, neither R contains W, nor R contains a key, nor W is part of a key.
  • Second, it is/not 2NF. If we examine the second FD, W is dependent on R, which in turn is not part of a key. STUCK.
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up vote 2 down vote accepted

2NF is violated if some proper subset of a candidate key appears as a determinant on the left hand side of one of your (non-trivial) dependencies. Ask yourself whether any of your determinants is a subset of a candidate key.

Usually 2NF is violated only when a relation has a composite key - a key with more than one attribute. It is technically possible for a relation with only simple keys (single attribute keys) to violate 2NF if the empty set (∅) happens to be a determinant. Such cases are fairly unusual and rarely thought worthy of consideration because they are so obviously "wrong". For completeness, here's a fun example of that special case. In the following relation Circumference and Diameter are both candidate keys. The dependency in violation of 2NF is ∅ -> Pi, the ratio of the circumference to the diameter.

CIRCLE relation

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1  
No determinant is a subset of a proper subset of a candidate key, one det is equal to a candidate key, and another is not even a subset. So the relation is 2NF. – ToniAz May 18 '13 at 6:30
    
@ToniAz {}->Pi so determinant {} is a proper superset of CK {Circumference} and of CK {Diameter}. So Pi, a non-prime attribute, is partially functionally dependent on each of the CKs. So 2NF is violated. – philipxy Jun 10 '15 at 0:47
    
@philipxy, you are right but I guess that ToniAz's previous comment is a reference to his example and not to mine. – sqlvogel Jun 10 '15 at 19:31

2NF has to do with partial key dependencies. In order for a relation to fail the test for 2NF, the relation has to have at least one candidate key that has at least two columns.

Since your relation has only one candidate key, and that candidate key has only one column, you can't possibly have a partial key dependency. It passes the test for 2NF.

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A -ve would be very harsh ;-) – sqlvogel May 17 '13 at 20:12

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