CS 728 Advanced Database Systems Chapter 15 - PowerPoint PPT Presentation

About This Presentation
Title:

CS 728 Advanced Database Systems Chapter 15

Description:

CS 728 Advanced Database Systems Chapter 15 Database Design Theory: Normalization Algorithms Chapter Outline 0. Designing a Set of Relations 1. Properties of ... – PowerPoint PPT presentation

Number of Views:374
Avg rating:3.0/5.0
Slides: 63
Provided by: justEduJo
Category:

less

Transcript and Presenter's Notes

Title: CS 728 Advanced Database Systems Chapter 15


1
CS 728 Advanced Database Systems Chapter 15
  • Database Design Theory Normalization Algorithms

2
Chapter Outline
  • 0. Designing a Set of Relations
  • 1. Properties of Relational Decompositions
  • 2. Algorithms for Relational Database Schema
  • 3. Multivalued Dependencies and 4th Normal Form
  • 4. Join Dependencies and 5th Normal Form
  • 5. Inclusion Dependencies
  • 6. Other Dependencies and Normal Forms

3
Designing a Set of Relations (1)
  • The 1st approach is (Chapter 14) a Top-Down
    Design (Relational Design by Analysis)
  • 1. Designing a conceptual schema in a high-level
    data model, such as the EER model
  • 2. Mapping the conceptual schema into a set of
    relations using mapping procedures.
  • 3. Each of the relations is analyzed based on the
    functional dependencies and assigned primary
    keys, by applying the normalization procedure to
    remove partial and transitive dependencies if any
    remain.

4
Designing a Set of Relations (2)
  • The 2nd approach is (Chapter 15) a Bottom-Up
    Design (Relational Design by Synthesis -
    ???????)
  • 1. First constructs a minimal set of FDs
  • Assumes that all possible functional dependencies
    are known.
  • 2. a normalization algorithm is applied to
    construct a target set of 3NF or BCNF relations.
  • start by one large relation schema, called the
    universal relation, which includes all the
    database attributes.
  • then repeatedly perform decomposition until it is
    no longer feasible or no longer desirable, based
    on the functional and other dependencies
    specified by the database designer.

5
Designing a Set of Relations (3)
  • Additional criteria may be needed to ensure the
    set of relations in a relational database are
    satisfactory.
  • Two desirable properties of decompositions
  • The dependency preservation property and
  • The lossless (or nonadditive) join property

6
Designing a Set of Relations (4)
  • When we decompose a relation schema R with a set
    of functional dependencies F into R1, R2, , Rn
    we want
  • Dependency preservation
  • Otherwise, checking updates for violation of
    functional dependencies may require computing
    joins, which is expensive.
  • Nonadditive (Lossless) join decomposition
  • Otherwise decomposition would result in
    information loss.
  • No redundancy
  • The relations Ri preferably should be in either
    Boyce-Codd Normal Form or 3NF.

7
Designing a Set of Relations (5)
  • Example R (A, B, C) F A?B, B?C
  • Can be decomposed in two different ways
  • R1 (A, B), R2 (B, C)
  • Lossless-join decomposition
  • R1 ? R2 B and B ? BC
  • Dependency preserving
  • R1 (A, B), R2 (A, C)
  • Lossless-join decomposition
  • R1 ? R2 A and A ? AB
  • Not dependency preserving
  • cannot check B ? C without computing R1 R2

8
Properties of Relational Decompositions (1)
  • Relation Decomposition and Insufficiency of
    Normal Forms
  • Universal Relation Schema
  • a relation schema R A1, A2, , An that
    includes all the attributes of the database.
  • Universal relation assumption
  • every attribute name is unique.
  • Decomposition
  • The process of decomposing the universal relation
    schema R into a set of relation schemas
  • D R1, R2, , Rm that will become the
    relational database schema by using the
    functional dependencies.

9
Properties of Relational Decompositions (2)
  • Relation Decomposition and Insufficiency of
    Normal Forms
  • Attribute preservation condition
  • Each attribute in R will appear in at least one
    relation schema Ri in the decomposition so that
    no attributes are lost.
  • Another goal of decomposition is to have each
    individual relation Ri in the decomposition D be
    in BCNF or 3NF.
  • Additional properties of decomposition are
    needed to prevent from generating spurious
    (???????) tuples.

10
Properties of Relational Decompositions (3)
  • Example of spurious tuples.
  • Decomposition of R (A, B)
  • R1 (A) R2 (B)

A
B
A
B
? ? ?
1 2 1
? ?
1 2
?B(r)
?A(r)
r
A
B
?A(r) ?B(r)
? ? ? ?
1 2 1 2
11
Properties of Relational Decompositions (4)
  • Dependency Preservation Property of a
    Decomposition
  • It would be useful if each functional dependency
    X ? Y specified in F either
  • appeared directly in one of the relation schemas
    in the decomposition D or
  • could be inferred from the dependencies that
    appear in some Ri .
  • Informally, this is the
  • dependency preservation condition.

12
Properties of Relational Decompositions (5)
  • Dependency Preservation Property of a
    Decomposition
  • We want to preserve the dependencies because each
    dependency in F represents a constraint on the
    database.
  • If one of the dependencies is not represented in
    some individual relation of the decomposition, we
    cannot enforce this constraint by dealing with an
    individual relation instead,
  • we have to join two or more of the relations in
    the decomposition and then check that the
    functional dependency holds in the result of the
    join operation.
  • This is clearly an inefficient and impractical
    procedure.

13
Properties of Relational Decompositions (6)
  • Dependency Preservation Property of a
    Decomposition
  • It is not necessary that the exact dependencies
    specified in F appear themselves in individual
    relations of the decomposition D.
  • It is sufficient that the union of the
    dependencies that hold on the individual
    relations in D be equivalent to F.
  • We now define these concepts more formally.

14
Properties of Relational Decompositions (7)
  • Dependency Preservation Property of a
    Decomposition
  • Definition
  • Given a set of dependencies F on R, the
    projection of F on Ri, denoted by ?Ri(F) where Ri
    is a subset of R, is the set of dependencies X ?
    Y in F such that the attributes in X ? Y are all
    contained in Ri.
  • Hence, the projection of F on each relation
    schema Ri in the decomposition D is the set of
    functional dependencies in F, the closure of F,
    such that all their left- and right-hand-side
    attributes are in Ri.

15
Properties of Relational Decompositions (8)
  • Dependency Preservation Property of a
    Decomposition
  • A decomposition D R1, R2, ..., Rm of R is
    dependency-preserving with respect to F if the
    union of the projections of F on each Ri in D is
    equivalent to F that is,
  • ((?R1(F)) ? ? (?Rm(F))) F
  • Claim 1 It is always possible to find a
    dependency-preserving decomposition D with
    respect to F such that each relation Ri in D is
    in 3NF.

16
Properties of Relational Decompositions (9)
  • Consider a decomposition of R (R, F) into
  • R1 (R1, F1) and R2 (R2, F2)
  • How to compute the projections F1 and F2?
  • Fi is the projection of FDs in F over Ri
  • Example RABC and F A?B, B?C, C?A
  • Let R1AB and R2BC
  • Not enough to let F1 A?B and F2 B?C
  • Consider FDs in F B?A and C?B
  • So F1 A?B, B?A and F2 B?C, C?B
  • Now F and F1 ? F2 are equivalent

17
Properties of Relational Decompositions (10)
  • Lossless (Non-additive) Join Property of a
    Decomposition
  • This property ensures that no spurious tuples are
    generated when a NATURAL JOIN operation is
    applied to the relations in the decomposition.
  • Lossless join property a decomposition D R1,
    R2, ..., Rm of R has the lossless (nonadditive)
    join property with respect to the set of
    dependencies F on R if, for every relation state
    r of R that satisfies F, the following holds,
    where is the natural join of all the relations
    in D
  • (?R1(r), ..., ?Rm(r)) r
  • r ? r1 r2 rm and
  • r1 r2 rm ? r

18
Properties of Relational Decompositions (11)
  • Consider
  • What happens if we decompose on
  • (Id, Name, Address) and
  • (C, Description, Grade)?
  • Spurious tuples will be generated

19
Properties of Relational Decompositions (12)
  • Lossy Decomposition
  • Problem Name is not a key

SSN Name Address SSN Name Name
Address 1111 Joe 1 Pine 1111 Joe
Joe 1 Pine 2222 Alice 2 Oak
2222 Alice Alice 2 Oak 3333 Alice
3 Pine 3333 Alice Alice 3 Pine
?
r1
r2
r
20
Properties of Relational Decompositions (13)
  • Lossless (Non-additive) Join Property of a
    Decomposition
  • Note The word loss in lossless refers to loss of
    information, not to loss of tuples. In fact, for
    loss of information a better term is addition
    of spurious information.
  • Algorithm 15.3 Testing for Lossless Join
    Property
  • Input A universal relation R, a decomposition D
    R1, R2, ..., Rm of R, and a set F of
    functional dependencies.

21
Properties of Relational Decompositions (14)
  • 1. Create an initial matrix S with one row i for
    each relation Ri in D, and one column j for each
    attribute Aj in R.
  • 2. Set S(i, j) bij for all matrix entries.
  • // each bij is a symbol associated with indices
    (i, j)
  • 3. For each row i representing relation schema Ri
  • For each column j representing attribute Aj
  • if (relation Ri includes attribute Aj) then
    S(i, j) aj
  • // each aj is a symbol associated with
    index j

22
Properties of Relational Decompositions (15)
  • 4. Repeat until a complete loop execution results
    in no changes to S
  •       for each functional dependency X ?Y in F
  • for all rows in S which have the same symbols
    in the
  • columns corresponding to attributes
    in X
  • make the symbols in each column that
    correspond
  • to an attribute in Y be the same
    in all these rows as
  • follows
  • If any of the rows has an a symbol
    for the
  • column, set the other rows to that
    same a
  • symbol in the column.

23
Properties of Relational Decompositions (16)
  • If no a symbol exists for the attribute in
    any of the rows, choose one of the b symbols
    that appear in one of the rows for the
    attribute and set the other rows to that same
    b symbol in the column
  • 5. If a row is made up entirely of a symbols,
    then the decomposition has the lossless join
    property otherwise it does not.

24
Properties of Relational Decompositions (17)
  • Lossless (non-additive) join test for n-ary
    decompositions.
  • (a) Case 1 Decomposition of EMP_PROJ into
    EMP_PROJ1 and EMP_LOCS fails test.
  • (b) A decomposition of EMP_PROJ that has the
    lossless join property.
  • (c) Case 2 Decomposition of EMP_PROJ into EMP,
    PROJECT, and WORKS_ON satisfies test.

25
Properties of Relational Decompositions (18)
26
Properties of Relational Decompositions (19)
27
Properties of Relational Decompositions (20)
  • Binary Decomposition
  • decomposition of a relation R into two relations.
  • Non-additive (Lossless) Join Test for Binary
    decompositions (NJB)
  • A decomposition D R1, R2 of R has the
    lossless join property with respect to a set of
    functional dependencies F on R if and only if
    either
  • The FD ((R1 n R2) ? (R1- R2)) is in F, or
  • The FD ((R1 n R2) ? (R2 - R1)) is in F.

28
Properties of Relational Decompositions (21)
  • Intuition for Test for Losslessness
  • Suppose R1 ? R2 ? R2. Then a row of r1 can
    combine with exactly one row of r2 in the
    natural join (since in r2 a particular set of
    values for the shared attributes defines a unique
    row), i.e.,
  • R1 ? R2 is a superkey of R2

R1?R2 R1?R2 . a
a ... a b
. b c .
c r1 r2
29
Properties of Relational Decompositions (22)
  • Schema (R, F) where
  • R SSN, Name, Address, Hobby
  • F SSN ? Name, Address
  • can be decomposed into
  • R1 SSN, Name, Address
  • F1 SSN ? Name, Address
  • and
  • R2 SSN, Hobby
  • F2
  • Since R1 ? R2 SSN and
  • SSN ? R1- R2
  • SSN ? Name, Address is in F, then
  • the decomposition is lossless

30
Properties of Relational Decompositions (23)
  • Example WRT the FD set
  • Id ? Name, Address
  • C ? Description
  • Id, C ? Grade
  • Is
  • (Id, Name, Address) and
  • (Id, C, Description, Grade)
  • a lossless decomposition?

31
Properties of Relational Decompositions (24)
  • A relation scheme
  • Sname, Sadd, City, Zip, Item, Price
  • The FD set
  • Sname ? Sadd, City
  • Sadd, City ? Zip
  • Sname, Item ? Price
  • Consider the decomposition
  • Sname, Sadd, City, Zip and
  • Sname, Item, Price
  • Is it lossless?
  • Is it dependency preserving?
  • What if we replaced the first FD by
  • Sname, Sadd ? City?

32
Properties of Relational Decompositions (25)
  • The scheme
  • Student, Teacher, Subject
  • The FD set
  • Teacher ? Subject
  • Student, Subject ? Teacher
  • The decomposition
  • Student, Teacher and
  • Teacher, Subject
  • Is it lossless?
  • Is it dependency preserving?

33
Properties of Relational Decompositions (26)
  • Claim 2 (Preservation of non-additivity in
    successive decompositions)
  • If a decomposition D R1, R2, ..., Rm of R has
    the lossless (non-additive) join property with
    respect to a set of functional dependencies F on
    R, and
  • if a decomposition Di Q1, Q2, ..., Qk of Ri
    has the lossless (non-additive) join property
    with respect to the projection of F on Ri,
  • then the decomposition D2 R1, R2, ..., Ri-1,
    Q1, Q2, ..., Qk, Ri1, ..., Rm of R has the
    lossless (non-additive) join property with
    respect to F.

34
Algorithms for RDB Schema Design (1)
  • Algorithm 15.4 Relational Synthesis into 3NF
    with Dependency Preservation
  • Input A universal relation R and a set of
    functional dependencies F on the attributes of R.
  • Find a minimal cover G for F
  • For each left-hand-side X of a functional
    dependency that appears in G, create a relation
    schema in D with attributes X ? A1 ? A2 ...
    ? Ak, where X ? A1, X ? A2, ..., X ? Ak are
    the only dependencies in G with X as
    left-hand-side (X is the key of this relation)
  • Place any remaining attributes (that have not
    been placed in any relation) in a single relation
    schema to ensure the attribute preservation
    property.

35
Algorithms for RDB Schema Design (2)
  • A set of FDs F is minimal if it satisfies the
    following conditions
  • Every FD in F is of the form X?A, where A is a
    single attribute,
  • We cannot remove any dependency from F and have a
    set of dependencies that is equivalent to F.
  • For no X?A in F is F-X?A equivalent to F.
  • We cannot replace any dependency X?A in F with a
    dependency Y?A, where Y is a proper-subset of X
    (Y subset-of X) and still have a set of
    dependencies that is equivalent to F.
  • For no X?A in F and Y?X is F-X?A?Y?A
    equivalent to F.

36
Algorithms for RDB Schema Design (3)
  • Examples
  • A?C, A?B is a minimal cover for AB?C, A?B
  • What about AB?C, B ? AB, D?BC?
  • Every set of FDs has an equivalent minimal set
  • There can be several equivalent minimal sets
  • There is no simple algorithm for computing a
    minimal set of FDs that is equivalent to a set F
    of FDs
  • To synthesize a set of relations, we assume that
    we start with a set of dependencies that is a
    minimal set.

37
Algorithms for RDB Schema Design (4)
  • Two sets of FDs F and G are equivalent if
  • Every FD in F can be inferred from G, and
  • Every FD in G can be inferred from F
  • Hence, F and G are equivalent if F G
  • Definition (Covers)
  • F covers G if every FD in G can be inferred from
    F
  • (i.e., if G is subset-of F)
  • F and G are equivalent if F covers G and G covers
    F
  • There is an algorithm for checking equivalence of
    sets of FDs

38
Algorithms for RDB Schema Design (5)
  • Algorithm 15.2  Finding a minimal cover G for F
  • 1. Set G F.
  • 2. Replace each FD X?A1, A2, ..., Ak in G by
    the n functional dependencies X?A1, X?A2 , ,
    X?Ak.
  • 3. For each FD X?A in G
  • For each attribute B that is an element of X
  • if ((G -X?A) ? (X-B)?A) is equivalent to G,
  • then replace X?A with (X-B)?A in G.
  • 4. For each remaining FD X?A in G,
  • if (G-X?A) is equivalent to G, then remove X?A
    from G.

39
Algorithms for RDB Schema Design (6)
  • Example
  • A?B, ABCD?E, EF?GH, ACDF?EG
  • Make RHS a single attribute
  • A?B, ABCD?E, EF?G, EF?H, ACDF?E, ACDF?G
  • Minimize LHS ACD?E instead of ABCD?E
  • Eliminate redundant FDs
  • Can ACDF?G be removed?
  • Can ACDF?E be removed?
  • Final answer A?B, ACD?E, EF?G, EF?H

40
Algorithms for RDB Schema Design (7)
  • Minimal Cover Exercise
  • Compute the minimal cover of the following set of
    functional dependencies
  • ABC ? DE, BD ? DE, E ? CF, EG ? F
  • ABC ? D
  • ABC ? E //
  • BD ? D // reflexive
  • BD ? E
  • E ? C
  • E ? F
  • EG ? F // augmentation
  • The minimal cover is
  • ABC ? D, BD ? E, E ? C, E ? F

41
Algorithms for RDB Schema Design (8)
  • Example of Algorithm 15.4 (3NF Decomposition)
  • Consider
  • the relation R CSJDPQV
  • FDs F C?CSJDPQV, SD?P, JP?C,J?S
  • Find minimal cover
  • C?J, C?D, C?Q, C?V, SD?P, JP?C, J?S
  • New relations
  • R1CJDQV, R2JPC,
  • R3JS, R4SDP

42
Algorithms for RDB Schema Design (9)
  • Algorithm 15.5 Relational Decomposition into
    BCNF with Lossless (non-additive) join property
  • Input A universal relation R and a set of
    functional dependencies F on the attributes of R.
  • Set D R
  • While there is a relation schema Q in D that is
    not in BCNF
  • do
  • choose a relation schema Q in D that is not in
    BCNF
  •           find a FD X?Y in Q that violates
    BCNF
  •         replace Q in D by two relation
    schemas (Q-Y) (X?Y)

43
Algorithms for RDB Schema Design (10)
  • Example of Algorithm 15.5 (BCNF Decomposition)
  • R (branch-name, branch-city, assets,
    customer-name, loan-number, amount)
  • F branch-name ? branch-city, assets
  • loan-number ? branch-name, amount
  • Key loan-number, customer-name
  • Decomposition
  • R1 (branch-name, branch-city, assets)
  • R2 (branch-name, customer-name, loan-number,
    amount)
  • R3 (loan-number, branch-name, amount)
  • R4 (loan-number, customer-name)
  • Final decomposition R1, R3, R4

44
Algorithms for RDB Schema Design (11)
  • Example of Algorithm 15.5 (BCNF Decomposition)
  • R (A, B, C)F A ? B, B ? CKey A
  • R is not in BCNF
  • Decomposition R1 (A, B), R2 (B, C)
  • R1 and R2 in BCNF
  • Lossless-join decomposition
  • Dependency preserving

45
Algorithms for RDB Schema Design (12)
  • Algorithm 15.6 Relational Synthesis into 3NF with
    Dependency Preservation and Lossless
    (Non-Additive) Join Property
  • Input A universal relation R and a set of
    functional dependencies F on the attributes of R.
  • Find a minimal cover G for F (Use Algorithm
    15.2).
  • For each left-hand-side X of a functional
    dependency that appears in G, create a relation
    schema in D with attributes X?A1?A2...?
    Ak, where X?A1, X?A2, ..., X?Ak are the only
    dependencies in G with X as left-hand-side (X is
    the key of this relation).
  • If none of the relation schemas in D contains a
    key of R, then create one more relation schema in
    D that contains attributes that form a key of R.
  • Eliminate redundant relations from the resulting
    set of relations. A relation T is considered
    redundant if T is a projection of another
    relation S.

46
Algorithms for RDB Schema Design (13)
  • Algorithm 15.2a Finding a Key K for R Given a set
    F of Functional Dependencies
  • Input A universal relation R and a set of
    functional dependencies F on the attributes of R.
  • Set K R
  • For each attribute A in K
  •            compute (K - A) with respect to F
  • If (K - A) contains all the attributes in R,
  • then set K K - A

47
Algorithms for RDB Schema Design (14)
  • Discussion of Normalization Algorithms
  • Problems
  • The database designer must first specify all the
    relevant functional dependencies among the
    database attributes.
  • These algorithms are not deterministic in
    general.
  • It is not always possible to find a decomposition
    into relation schemas that preserves dependencies
    and allows each relation schema in the
    decomposition to be in BCNF (instead of 3NF).

48
Algorithms for RDB Schema Design (15)
Table 15.1 Summary of some of the algorithms
discussed
49
Multivalued Dependencies and 4th Normal Form (1)
  • Beyond BCNF
  • CustService (State, SalesPerson, Delivery)

Is this BCNF?
50
Multivalued Dependencies and 4th Normal Form (2)
  • Everything is in the key -- must be BCNF
  • Still problems with duplication
  • Multivalued Dependencies

51
Multivalued Dependencies and 4th Normal Form (3)
  • At least three attributes (A, B, C)
  • A B and A C
  • B and C are independent of each other (they
    really shouldnt be in the same table)

52
Multivalued Dependency and 4NF
  • Multivalued dependency (MVD)
  • Consequence of first normal form (1NF)

53
Multivalued Dependency and 4NF
  • Relations containing nontrivial MVDs
  • All-key relations
  • Fourth normal form (4NF)
  • Violated when a relation has undesirable
    multivalued dependencies

54
Multivalued Dependencies and 4th Normal Form (4)
  • Definition
  • A multivalued dependency (MVD) X gtgt Y specified
    on relation schema R, where X and Y are both
    subsets of R, specifies the following constraint
    on any relation state r of R
  • If two tuples t1 and t2 exist in r such that
    t1X t2X, then two tuples t3 and t4 should
    also exist in r with the following properties,
    where we use Z to denote (R - (X ? Y))
  • t3X t4X t1X t2X
  • t3Y t1Y and t4Y t2Y.
  • t3Z t2Z and t4Z t1Z.
  • An MVD X gtgt Y in R is called a trivial MVD if
  • (a) Y is a subset of X, or
  • (b) X ? Y R

55
Multivalued Dependencies and 4th Normal Form (5)
  • 4th Normal Form
  • BCNF with no multivalued dependencies
  • Create separate tables for each separate
    functional dependency

56
Multivalued Dependencies and 4th Normal Form (6)
  • (a) The EMP relation with two MVDs ENAME gtgt
    PNAME and ENAME gtgt DNAME. (b) Decomposing the
    EMP relation into two 4NF relations EMP_PROJECTS
    and EMP_DEPENDENTS.

57
Multivalued Dependencies and 4th Normal Form (7)
SalesForce (State, SalesPerson) Delivery
(State, Delivery)
58
Multivalued Dependencies and 4th Normal Form (8)
  • Inference Rules for Functional and Multivalued
    Dependencies
  • IR1 (reflexive rule for FDs)
  • If X ? Y, then X gt Y.
  • IR2 (augmentation rule for FDs)
  • X gt Y ?? XZ gt YZ.
  • IR3 (transitive rule for FDs)
  • X gt Y, Y gtZ ?? X gt Z.
  • IR4 (complementation rule for MVDs)
  • X gtgt Y ?? X gtgt (R (X ? Y)).
  • IR5 (augmentation rule for MVDs)
  • If X gtgt Y and W ? Z then WX gtgt YZ.
  • IR6 (transitive rule for MVDs)
  • X gtgt Y, Y gtgt Z ?? X gtgt (Z - Y).
  • IR7 (replication rule for FD to MVD)
  • X gt Y ?? X gtgt Y.
  • IR8 (coalescence (???????) rule for FDs and
    MVDs)
  • If X gtgt Y and there exists W with the properties
    that (a) W ? Y is empty, (b) W gt Z, and (c) Y ?
    Z, then X gt Z.

59
Multivalued Dependencies and 4th Normal Form (9)
  • A relation schema R is in 4NF with respect to a
    set of dependencies F (that includes functional
    dependencies and multivalued dependencies), at
    least one of the following hold
  • X gtgt Y is trivial (i.e., Y ? X or X ? Y R)
  • X is a superkey for schema R
  • If a relation is in 4NF it is in BCNF

60
Multivalued Dependencies and 4NF (10)
  • Decomposing a relation state of EMP that is not
    in 4NF. (a) EMP relation with additional tuples.
    (b) Two corresponding 4NF relations EMP_PROJECTS
    and EMP_DEPENDENTS.

61
Multivalued Dependencies and 4NF (11)
  • Algorithm 15.7 Relational decomposition into 4NF
    relations with non-additive join property
  • Input A universal relation R and a set of
    functional and multivalued dependencies F.
  • Set D R
  • While there is a relation schema Q in D that is
    not in 4NF do
  • choose a relation schema Q in D that is not in
    4NF
  • find a nontrivial MVD X gtgt Y in Q that
    violates 4NF
  • replace Q in D by two relation schemas (Q - Y)
    and (X ? Y)

62
Multivalued Dependencies and 4NF (12)
  • R (A, B, C, G, H, I)
  • F A gtgt B, B gtgt HI, CG gtgt H
  • R is not in 4NF since A gtgt B and A is not a
    superkey for R
  • Decomposition
  • R1 (A, B) (R1 is in 4NF)
  • R2 (A, C, G, H, I) (R2 is not in 4NF)
  • R3 (C, G, H) (R3 is in 4NF)
  • R4 (A, C, G, I) (R4 is not in 4NF)
  • Since A gtgt B and B gtgt HI, A gtgt HI, A gtgt I
  • R5 (A, I) (R5 is in 4NF)
  • R6 (A, C, G) (R6 is in 4NF)
Write a Comment
User Comments (0)
About PowerShow.com