Introduction to Data Management CSE 344
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1 Introduction to Data Management CSE 344 Lectures 18: BCNF 1
2 What makes good schemas? 2
3 Review: Relation Decomposition Break the relation into two: Name SSN PhoneNumber City Fred Seattle Fred Seattle Joe Westfield Name SSN City Fred Joe Seattle Westfield SSN PhoneNumber Anomalies have gone: No more repeated data Easy to move Fred to Bellevue (how?) Easy to delete all Joe s phone numbers (how?) 3
4 Review: Functional Dependencies (FDs) Definition If two tuples agree on the attributes A 1, A 2,, A n then they must also agree on the attributes Formally: B 1, B 2,, B m A 1 A n determines B 1..B m A 1, A 2,, A n à B 1, B 2,, B m 4
5 Review: Functional Dependencies (FDs) Definition A 1,..., A m à B 1,..., B n holds in R if: t, t R, (t.a 1 = t.a 1... t.a m = t.a m à t.b 1 = t.b 1... t.b n = t.b n ) R A 1... A m B 1... B n t t if t, t agree here then t, t agree here 5
6 Review: An Interesting Observation If all these FDs are true: name à color category à department color, category à price Then this FD also holds: name, category à price If we find out from application domain that a relation satisfies some FDs, it doesn t mean that we found all the FDs that it satisfies! There could be more FDs implied by the ones we have. 6
7 Review: Closure of a set of Attributes Given a set of attributes A 1,, A n The closure is the set of attributes B, notated {A 1,, A n } +, s.t. A 1,, A n à B Example: 1. name à color 2. category à department 3. color, category à price Closures: name + = {name, color} {name, category} + = {name, category, color, department, price} color + = {color} 7
8 Closure Algorithm X={A 1,, A n }. Repeat until X doesn t change do: if B 1,, B n à C is a FD and B 1,, B n are all in X then add C to X. Example: 1. name à color 2. category à department 3. color, category à price {name, category } + = { name, category, color, department, price } Hence: name, category à color, department, price 8
9 Example In class: R(A,B,C,D,E,F) A, B à C A, D à E B à D A, F à B Compute {A, B} + X = {A, B, } Compute {A, F} + X = {A, F, } 9
10 Example In class: R(A,B,C,D,E,F) A, B à C A, D à E B à D A, F à B Compute {A, B} + X = {A, B, C, D, E } Compute {A, F} + X = {A, F, } 10
11 Example In class: R(A,B,C,D,E,F) A, B à C A, D à E B à D A, F à B Compute {A, B} + X = {A, B, C, D, E } Compute {A, F} + X = {A, F, B, C, D, E } 11
12 Example In class: R(A,B,C,D,E,F) A, B à C A, D à E B à D A, F à B Compute {A, B} + X = {A, B, C, D, E } Compute {A, F} + X = {A, F, B, C, D, E } What is a key of 12 R?
13 Keys A superkey is a set of attributes A 1,..., A n s.t. for any other attribute B in the same relation, we have A 1,..., A n à B A key is a minimal superkey A superkey and for which no subset is a superkey 15
14 Computing (Super)Keys For all sets X, compute X + If X + = [all attributes], then X is a superkey Try reducing to the minimal X s to get the key 16
15 Example Product(name, price, category, color) name, category à price category à color What is the key? 17
16 Example Product(name, price, category, color) name, category à price category à color What is the key? (name, category) + = { name, category, price, color } Hence (name, category) is a key 18
17 Key or Keys? Can we have more than one key? Given R(A,B,C) define FD s s.t. there are two or more distinct keys 19
18 Key or Keys? Can we have more than one key? Given R(A,B,C) define FD s s.t. there are two or more distinct keys A à B B à C C à A or ABàC BCàA or AàBC BàAC what are the keys here? 20
19 Eliminating Anomalies Main idea: X à A is OK if X is a (super)key X à A is not OK otherwise Need to decompose the table, but how? Boyce-Codd Normal Form 21
20 Boyce-Codd Normal Form Dr. Raymond F. Boyce 22
21 Turing Awards in Data Management Charles Bachman, 1973 IDS and CODASYL Ted Codd, 1981 Relational model Jim Gray, 1998 Transaction processing Michael Stonebraker, 2014 INGRES and Postgres 23
22 Boyce-Codd Normal Form There are no bad FDs: Definition. A relation R is in BCNF if: Whenever Xà B is a non-trivial dependency, then X is a superkey. Equivalently: Definition. A relation R is in BCNF if: X in XàB, either X + = X or X + = [all attributes] 24
23 BCNF Decomposition Algorithm Normalize(R) find X in XàB s.t.: X X + and X + [all attributes] if (not found) then R is in BCNF let Y = X + - X; Z = [all attributes] - X + decompose R into R1(X Y) and R2(X Z) Normalize(R1); Normalize(R2); Y X Z X + 25
24 Want X in XàB s.t.: X =X + or X + = [all attributes] Example Name SSN PhoneNumber City Fred Seattle Fred Seattle Joe Westfield Joe Westfield SSN à Name, City The only key is: {SSN, PhoneNumber} Hence SSN à Name, City is a bad dependency Name, City SSN + SSN Phone- Number In other words: SSN+ = SSN, Name, City and is neither SSN nor All Attributes
25 Want X in XàB s.t.: X =X + or X + = [all attributes] Example BCNF Decomposition Name SSN City Fred Seattle Joe Westfield SSN à Name, City SSN PhoneNumber Name, City SSN + SSN Phone- Number Let s check anomalies: Redundancy? Update? Delete? 27
26 Find X in XàB s.t.: X X + and X + [all attributes] Example BCNF Decomposition Person(name, SSN, age, haircolor, phonenumber) SSN à name, age age à haircolor 28
27 Find X in XàB s.t.: X X + and X + [all attributes] Example BCNF Decomposition Person(name, SSN, age, haircolor, phonenumber) SSN à name, age age à haircolor Iteration 1: Person: SSN+ = SSN, name, age, haircolor Decompose into: P(SSN, name, age, haircolor) Phone(SSN, phonenumber) name, age, haircolor SSN phonenumber 29
28 Find X in XàB s.t.: X X + and X + [all attributes] Example BCNF Decomposition Person(name, SSN, age, haircolor, phonenumber) SSN à name, age What are age à haircolor the keys? Iteration 1: Person: SSN+ = SSN, name, age, haircolor Decompose into: P(SSN, name, age, haircolor) Phone(SSN, phonenumber) Iteration 2: P: age+ = age, haircolor Decompose: People(SSN, name, age) Hair(age, haircolor) Phone(SSN, phonenumber) 30
29 Find X in XàB s.t.: X X + and X + [all attributes] Example BCNF Decomposition Person(name, SSN, age, haircolor, phonenumber) SSN à name, age age à haircolor Iteration 1: Person: SSN+ = SSN, name, age, haircolor Decompose into: P(SSN, name, age, haircolor) Phone(SSN, phonenumber) Note the keys! Iteration 2: P: age+ = age, haircolor Decompose: People(SSN, name, age) Hair(age, haircolor) Phone(SSN, phonenumber) 31
30 R(A,B,C,D) Example: BCNF A à B B à C R(A,B,C,D) 32
31 R(A,B,C,D) Example: BCNF A à B B à C Recall: find X s.t. X X + [all-attrs] R(A,B,C,D) 33
32 R(A,B,C,D) Example: BCNF A à B B à C Recall: find X s.t. X X + [all-attrs] R(A,B,C,D) A + = ABC ABCD 34
33 R(A,B,C,D) Example: BCNF A à B B à C Recall: find X s.t. X X + [all-attrs] R(A,B,C,D) A + = ABC ABCD R 1 (A,B,C) R 2 (A,D) 35
34 R(A,B,C,D) Example: BCNF A à B B à C Recall: find X s.t. X X + [all-attrs] R(A,B,C,D) A + = ABC ABCD R 1 (A,B,C) B + = BC ABC R 2 (A,D) 36
35 R(A,B,C,D) Example: BCNF A à B B à C Recall: find X s.t. X X + [all-attrs] R(A,B,C,D) A + = ABC ABCD R 1 (A,B,C) B + = BC ABC R 2 (A,D) R 11 (B,C) R 12 (A,B) What are the keys? What happens if in R we first pick B +? Or AB +? 37
36 Decompositions in General R(A 1,..., A n, B 1,..., B m, C 1,..., C p ) S 1 (A 1,..., A n, B 1,..., B m ) S 2 (A 1,..., A n, C 1,..., C p ) S 1 = projection of R on A 1,..., A n, B 1,..., B m S 2 = projection of R on A 1,..., A n, C 1,..., C p 38
37 Lossless Decomposition Name Price Category Gizmo Gadget OneClick Camera Gizmo Camera Name Price Gizmo OneClick Gizmo Name Gizmo OneClick Gizmo Category Gadget Camera Camera 39
38 Lossy Decomposition What is lossy here? Name Price Category Gizmo Gadget OneClick Camera Gizmo Camera Name Gizmo OneClick Gizmo Category Gadget Camera Camera Price Category Gadget Camera Camera 40
39 Lossy Decomposition Name Price Category Gizmo Gadget OneClick Camera Gizmo Camera Name Gizmo OneClick Gizmo Category Gadget Camera Camera Price Category Gadget Camera Camera 41
40 Decomposition in General R(A 1,..., A n, B 1,..., B m, C 1,..., C p ) S 1 (A 1,..., A n, B 1,..., B m ) S 2 (A 1,..., A n, C 1,..., C p ) S 1 = projection of R on A 1,..., A n, B 1,..., B m S 2 = projection of R on A 1,..., A n, C 1,..., C p The decomposition is called lossless if R = S 1 S 2 Let: Fact: If A 1,..., A n à B 1,..., B m then the decomposition is lossless It follows that every BCNF decomposition is lossless 42
41 Schema Refinements = Normal Forms 1st Normal Form = all tables are flat 2nd Normal Form = obsolete Boyce Codd Normal Form = no bad FDs 3rd and 4th Normal Form = see book BCNF is lossless but can cause loss of ability to check some FDs (see book 3.4.4) 3NF fixes that (is lossless and dependencypreserving), but some tables might not be in BCNF i.e., they may have redundancy anomalies 50
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