Normalization

Normalization ISYS 464

Database Design Based on ERD • Strong entity: Create a table that includes all simple attributes • Composite • Weak entity: add owner primary key • Multi-valued attribute: Create a table for each multi-valued attribute • Key + attribute • Relationship: • 1:1, 1:M • Relationship table: for partial participation to avoid null • Foreign key • M:M: relationship table • N-ary relationship: relationship table • Recursive relationship • Attribute of relationship • Superclass and subclass • Note: The database designed according to these rules will meet the 3NF requirements.

Top-Down vs Bottom-Up • Top-Down database design: • Users’ requirements: forms,reports,views, etc. • Data model: ERD • Relational database design • Bottom-Up database design: • Users’ requirements: forms,reports,views, etc. • Universal relation: A relation contains all attributes required by users and relationships between attributes. • View aggregation • Relational database design

Example Employee/Dependent report: EmpID: E101 Ename: Peter Address: 123 XYZ St DependentName Relationship DOB Nancy Daughter 1/1/95 Alan Son 12/25/03 EmpDependent Table: EmpID EmpName Address DepName Relation DepDOB E101 Peter 123 XYZ St Nancy D 1/1/95 E101 Peter 123 XYZ St Alan S 12/25/03 Note: This database is able to produce the report, but has duplicated data.

Update Anomalies Due To Duplication • Modification anomaly: • Inconsistent data • Insertion Anomalies: • Enter an employee with no dependent • Null • Deletion Anomaly: • If Nancy and Alan become independent.

Example • Employee Table: • SSN, Ename, Sex, DOB, Phone • Employee may have more than 1 phone. • If Peter has two phones, 7890 and 7892: • SSN, Ename, Sex, DOB, Phone • 1234 Peter M 7/4/75 7890 • 1234 Peter M 7/4/75 7892

Normalization • Decompose unsatisfactory relation into smaller relations with desirable properties. • No duplication • The original relation can be recovered by applying natural join to the smaller relations. • So that no information is lost in the process. • Keys and function dependency: • Which field is the key field of the EMpDependent Table? • EmpID + DepName

Function Dependency • Relationship between attributes • X -> Y • The value of X uniquely determines the value of Y. • Y is functionally dependent on X. • A value of X is associated with only one value of Y.

Example • Employee table: • SSN Ename Sex DOB • S1 Peter M 1/1/75 • S2 Paul M 12/25/80 • S3 Mary F 7/4/72 • Function Dependencies: • SSN -> Ename, SSN ->Sex, SSN -> DOB • SSN -> Ename, Sex, DOB • Any other FD: • Ename -> SSN ? • Ename -> Sex ? • DOB -> SSN ?

What is the key of Employee table: • SSN • Observations: • All non-key fields are functionally dependent on SSN. • There is no other FD. • The only FD is the key dependency. • There is no data duplication in the Employee table.

If we mix multivalue attribute with regular attributes in one table • Employee Table: • SSN, Ename, Sex, DOB, Phone • Employee may have more than 1 phone. • FD: • SSN -> Ename, Sex, DOB • SSN -> Phone ? • Key: • Duplication ?

Example 2 • EmpDependent table: • EmpID, Ename, Address, Depname, Relation, DepDOB • FD: • EmpID ->Ename, Address • Key: EmpID + Depname

If we mix two entities with 1:M relationship in one table • FacultyStudent table: • Faculty Advise Student: 1:M relationship • FID, Fname, SID, Sname, SAddress • FD: • FID -> Fname • SID -> Sname, SAddress, FID, Fname • Key: SID

If we mix two entities with M:M relationship in one table • BankAccount table: • Acct#, AcctType, CID, Cname, Address, OpenDate, Balance • Function Dependencies: • Acct# -> AcctType Y • Acct# -> CID N • Acct# -> Cname N • Acct# -> OpenDate Y • Acct# ->Balance Y • CID -> Cname, AddressY • Key: Acct# + CID • Duplication ? Y

Normalization Process • Inputs: • A “universal relation” • Function dependencies • Output: Normalized tables • Process: • Decompose the unnormalized relation into smaller relations such that in each relation the non key fields are functionally dependent on the key, the whole key, and nothing but the key. So help me Codd!

First Normal Form • The fields of a relation are all simple attribute. • All relational database tables meet this requirement. • EmpDependent table: • EmpID, Ename, Address, Depname, Relation, DepDOB • First normal form? Yes • Second normal form?

Second Normal Form • The non-key fields are functionally dependent on the key, and the whole key. • FD: • EmpID ->Ename, Address • Key: EmpID + Depname • Ename and Address depend on part of the key. • Every non-key field is fully functionally dependent on the key. • Decompose the EMpDependent table into two tables: • EmpID, Ename, Address • EmpID, Depname, Relation, DepDOB

Employee Table: • SSN, Ename, Sex, DOB, Phone • Employee may have more than 1 phone. • FD: • SSN -> Ename, Sex, DOB, • SSN -> Phone ? • Key: SSN + Phone • 2NF? No • Decompose into two tables: • SSN, Ename, Sex, DOB • SSN, Phone

FacultyStudent table: • Faculty Advise Student: 1:M relationship • FID, Fname, Office, SID, Sname, SAddress • FD: • FID -> Fname, Office • SID -> Sname, SAddress, FID, Fname, Office • Key: SID • 2NF ? Yes • Duplication? Yes • Why? • All non-key fields depend on the whole key, but not Nothing But the Key! • SID -> FID, Fname, Office • FID -> Fname, Office

Transitive Dependency • If X -> Y, and Y->Z then X -> Z. • Z if transitively dependent on the key. • SID -> FID, FID -> Fname, Office • SID -> Fname, Office • Fname and Office are transitively dependent on SID.

Third Normal Form • Every non-key field is: • Fully functionally dependent on the key, and • Non-transitively dependent on the key. • Decompose: • FID, Fname, Office • SID, FID, Sname, SAddress

Example Customer/Orders report: CID: C101 Cname: Peter Address: 123 XYZ St OID Odate SalesPerson Amount O25 1/1/04 John 125 O30 2/25/04 Alan 500 CustomerOrders Table: CID CName Address OID Odate SalesPerson Amount C101 Peter 123 XYZ St O25 1/1/04 John 125 C101 Peter 123 XYZ St O30 2/25/04 Alan 500

Example • Key: OID • FD: • OID -> CID, Cname, Address, Odate, SalesPerson, Amount • CID -> Cname, Address • 2NF? Yes • 3 NF? No • Decompose: • CID, Cname, Address • OID, CID, Odate, SalesPerson, Amount

Example with 1:M Relationship • FacultyStudent table: • Faculty Advise Student: 1:M relationship • FID, Fname, SID, Sname, SAddress • FD: • FID -> Fname • SID -> Sname, Saddress • Key: SID • 2NF? Yes • 3NF? No, because SID ->FID, FID -> Fname • Decompose: • Table 1: FID, Fname • Tablw 2: SID, FID, Sname, SAddress

Example with M:M Relationship • BankAccount table: • Acct#, AcctType, CID, Cname, Address, OpenDate, Balance • Function Dependencies: • Acct# -> AcctType, OpenDate, Balance • CID -> Cname, Address • Key: Acct# + CID • 2NF? No • Decompose: • Table 1: Acct# -> AcctType, OpenDate, Balance • Table 2: CID -> Cname, Address • Table 3: Acct# , CID • 3NF? Yes

Is It Really A Ternary Relationship? Qty Supplier Project Part If each part is supplied by only one supplier?

Relationship Table: • SID, PrtID, PjID, Qty • Key: PrtID + PjID -> SID, Qty • FD: PrtID SID • 2ND NF? No • Decompose: • Table1: PrtID, SID • Table2: PrtID, PjID, Qty

Database Design Based on ERD • Strong entity: Create a table that includes all simple attributes • Composite • Weak entity: add owner primary key • Multi-valued attribute: Create a table for each multi-valued attribute • Key + attribute • Relationship: • 1:1, 1:M • Relationship table: for partial participation to avoid null • Foreign key • M:M: relationship table • N-ary relationship: relationship table • Recursive relationship • Attribute of relationship • Superclass and subclass • Note: The database designed according to these rules will meet the 3NF requirements.

Boyce-Codd Normal Form • 3NF: All non-key attributes are dependent on the key and nothing else. • Boy-Codd Normal Form: • A relation is in 3NF, and • Key attributes cannot be dependent on non-key attributes. • Whenever X -> A holds, then X is a key.

Example • Relation: A, B, C • FD: • A, B  C • C  B • Key: A, B • It is in 3 NF, but not in BC NF.

Stock Employee Part M M Warehouse 1 M We also know each part in a warehouse is managed by one employee, and an employee may manage many parts.

Table: • WID, PID, EID, Stock • LA P1 E5 40 • LA P5 E6 50 • LA P7 E5 45 • Key: WID + PID  EID, Stock • FD: EID WID • 3 NF? Yes • BC NF? No • Decompose: • Table 1: EID, WID • Table 2: EID, PID, Stock

Alternative Approach Key: EID + PID  WID, Stock FD: EID  WID 2NF? No Table 1: EID, WID Table 2: EID, PID, Stock • Potential violation of BCNF may occur when: • The relation has more than 1 composite candidate keys; • The candidate keys have at least one attribute in common. • WID + PID • EID + PID

Multi-Valued Dependency • A -- >> B • A -- >> C • For each value of A there is a set of values for B and a set of values for C. However, the set of values for B and C are independent of each other.

Fourth Normal Form • A relation is in Boyce-Codd normal form and does not contain multi-valued dependencies.

Student: A student may have many majors and many phones. • SID, Sname, Major, Phone • S1 Peter CIS 1234 • S1 Peter CIS 3456 • S1 Peter Acct 1234 • S1 Peter Acct 3456 • Key: SID + Major + Phone • FD: SID  Sname • 2NF? No • Decompose: • Table 1: SID, Sname • Table 2: SID, Major, Phone • Table 2 in 3NF? Yes; in 4 NF? No • SID, Major • SID, Phone

Denormalization • The refinement to the relational schema such that the degree of normalization for a modified relation is less than the degree of at least one of the original relations. • Objective: • Speed up processing

Normalization

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