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Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Lecture 3 of 42 Wednesday, 03 September.

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Presentation on theme: "Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Lecture 3 of 42 Wednesday, 03 September."— Presentation transcript:

1 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Lecture 3 of 42 Wednesday, 03 September 2008 William H. Hsu Department of Computing and Information Sciences, KSU KSOL course page: http://snipurl.com/1pq4chttp://snipurl.com/1pq4c Course web site: http://www.kddresearch.org/Courses/Fall-2008/CIS560http://www.kddresearch.org/Courses/Fall-2008/CIS560 Instructor home page: http://www.cis.ksu.edu/~bhsuhttp://www.cis.ksu.edu/~bhsu Reading for Next Class: Chapter 2, Silberschatz et al., 5 th edition – next week Problem Set 1 Relational Databases Discussion: Problem Set 1

2 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Relational Algebra: Review Procedural language Six basic operators  select:   project:   union:   set difference: –  Cartesian product: x  rename:  The operators take one or two relations as inputs and produce a new relation as a result.

3 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Example Queries Find the names of all customers who have a loan at the Perryridge branch. Find the names of all customers who have a loan at the Perryridge branch but do not have an account at any branch of the bank.  customer_name (  branch_name = “Perryridge” (  borrower.loan_number = loan.loan_number (borrower x loan))) –  customer_name (depositor)  customer_name (  branch_name=“Perryridge ” (  borrower.loan_number = loan.loan_number (borrower x loan)))

4 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Example Queries Find the names of all customers who have a loan at the Perryridge branch. Query 2  customer_name (  loan.loan_number = borrower.loan_number ( (  branch_name = “Perryridge ” (loan)) x borrower)) Query 1  customer_name (  branch_name = “Perryridge” (  borrower.loan_number = loan.loan_number (borrower x loan)))

5 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Example Queries Find the largest account balance  Strategy:  Find those balances that are not the largest  Rename account relation as d so that we can compare each account balance with all others  Use set difference to find those account balances that were not found in the earlier step.  The query is:  balance (account) -  account.balance (  account.balance < d.balance (account x  d (account)))

6 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Formal Definition A basic expression in the relational algebra consists of either one of the following:  A relation in the database  A constant relation Let E 1 and E 2 be relational-algebra expressions; the following are all relational-algebra expressions:  E 1  E 2  E 1 – E 2  E 1 x E 2   p (E 1 ), P is a predicate on attributes in E 1   s (E 1 ), S is a list consisting of some of the attributes in E 1   x (E 1 ), x is the new name for the result of E 1

7 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Additional Operations We define additional operations that do not add any power to the relational algebra, but that simplify common queries. Set intersection Natural join Division Assignment

8 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Set-Intersection Operation Notation: r  s Defined as: r  s = { t | t  r and t  s } Assume:  r, s have the same arity  attributes of r and s are compatible Note: r  s = r – (r – s)

9 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Set-Intersection Operation – Example Relation r, s: r  s A B  121121  2323 rs  2

10 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Notation: r s Natural-Join Operation Let r and s be relations on schemas R and S respectively. Then, r s is a relation on schema R  S obtained as follows:  Consider each pair of tuples t r from r and t s from s.  If t r and t s have the same value on each of the attributes in R  S, add a tuple t to the result, where  t has the same value as t r on r  t has the same value as t s on s Example: R = (A, B, C, D) S = (E, B, D)  Result schema = (A, B, C, D, E)  r s is defined as:  r.A, r.B, r.C, r.D, s.E (  r.B = s.B  r.D = s.D (r x s))

11 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Natural Join Operation – Example Relations r, s: AB  1241212412 CD  aababaabab B 1312313123 D aaabbaaabb E  r AB  1111211112 CD  aaaabaaaab E  s r s

12 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Division Operation Notation: Suited to queries that include the phrase “for all”. Let r and s be relations on schemas R and S respectively where  R = (A 1, …, A m, B 1, …, B n )  S = (B 1, …, B n ) The result of r  s is a relation on schema R – S = (A 1, …, A m ) r  s = { t | t   R-S (r)   u  s ( tu  r ) } Where tu means the concatenation of tuples t and u to produce a single tuple r  s

13 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Division Operation – Example Relations r, s: r  s: A B  1212 AB  1231113461212311134612 r s

14 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Another Division Example AB  aaaaaaaaaaaaaaaa CD  aabababbaabababb E 1111311111113111 Relations r, s: r  s: D abab E 1111 AB  aaaa C  r s

15 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Division Operation (Cont.) Property  Let q = r  s  Then q is the largest relation satisfying q x s  r Definition in terms of the basic algebra operation Let r(R) and s(S) be relations, and let S  R r  s =  R-S (r ) –  R-S ( (  R-S (r ) x s ) –  R-S,S (r )) To see why   R-S,S (r) simply reorders attributes of r   R-S (  R-S (r ) x s ) –  R-S,S (r) ) gives those tuples t in  R-S (r ) such that for some tuple u  s, tu  r.

16 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Assignment Operation The assignment operation (  ) provides a convenient way to express complex queries.  Write query as a sequential program consisting of  a series of assignments  followed by an expression whose value is displayed as a result of the query.  Assignment must always be made to a temporary relation variable. Example: Write r  s as temp1   R-S (r ) temp2   R-S ((temp1 x s ) –  R-S,S (r )) result = temp1 – temp2  The result to the right of the  is assigned to the relation variable on the left of the .  May use variable in subsequent expressions.

17 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Bank Example Queries Find the names of all customers who have a loan and an account at bank.  customer_name (borrower)   customer_name (depositor) Find the name of all customers who have a loan at the bank and the loan amount

18 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Query 2  customer_name, branch_name (depositor account)   temp(branch_name ) ({(“Downtown” ), (“Uptown” )}) Note that Query 2 uses a constant relation. Bank Example Queries Find all customers who have an account from at least the “Downtown” and the Uptown” branches. Query 1  customer_name (  branch_name = “Downtown ” (depositor account ))   customer_name (  branch_name = “Uptown ” (depositor account))

19 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Find all customers who have an account at all branches located in Brooklyn city. Example Queries  customer_name, branch_name (depositor account)   branch_name (  branch_city = “Brooklyn” (branch))

20 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Extended Relational-Algebra-Operations Generalized Projection Aggregate Functions Outer Join

21 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Generalized Projection Extends the projection operation by allowing arithmetic functions to be used in the projection list. E is any relational-algebra expression Each of F 1, F 2, …, F n are are arithmetic expressions involving constants and attributes in the schema of E. Given relation credit_info(customer_name, limit, credit_balance), find how much more each person can spend:  customer_name, limit – credit_balance (credit_info)

22 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Aggregate Functions and Operations Aggregation function takes a collection of values and returns a single value as a result. avg: average value min: minimum value max: maximum value sum: sum of values count: number of values Aggregate operation in relational algebra E is any relational-algebra expression  G 1, G 2 …, G n is a list of attributes on which to group (can be empty)  Each F i is an aggregate function  Each A i is an attribute name

23 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Aggregate Operation – Example Relation r: AB   C 7 3 10 g sum(c ) (r) sum(c ) 27

24 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Aggregate Operation – Example Relation account grouped by branch-name: branch_name g sum( balance ) ( account ) branch_nameaccount_numberbalance Perryridge Brighton Redwood A-102 A-201 A-217 A-215 A-222 400 900 750 700 branch_namesum(balance) Perryridge Brighton Redwood 1300 1500 700

25 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Aggregate Functions (Cont.) Result of aggregation does not have a name  Can use rename operation to give it a name  For convenience, we permit renaming as part of aggregate operation branch_name g sum(balance) as sum_balance ( account )

26 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Outer Join An extension of the join operation that avoids loss of information. Computes the join and then adds tuples form one relation that does not match tuples in the other relation to the result of the join. Uses null values:  null signifies that the value is unknown or does not exist  All comparisons involving null are (roughly speaking) false by definition.  We shall study precise meaning of comparisons with nulls later

27 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Outer Join – Example Relation loan Relation borrower customer_nameloan_number Jones Smith Hayes L-170 L-230 L-155 3000 4000 1700 loan_numberamount L-170 L-230 L-260 branch_name Downtown Redwood Perryridge

28 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Query 2  customer_name, branch_name (depositor account)   temp(branch_name ) ({(“Downtown” ), (“Uptown” )}) Note that Query 2 uses a constant relation. Bank Example Queries Find all customers who have an account from at least the “Downtown” and the Uptown” branches. Query 1  customer_name (  branch_name = “Downtown ” (depositor account ))   customer_name (  branch_name = “Uptown ” (depositor account))

29 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Deletion: Review A delete request is expressed similarly to a query, except instead of displaying tuples to the user, the selected tuples are removed from the database. Can delete only whole tuples; cannot delete values on only particular attributes A deletion is expressed in relational algebra by: r  r – E where r is a relation and E is a relational algebra query.

30 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Deletion Examples: Review Delete all account records in the Perryridge branch. Delete all accounts at branches located in Needham. r 1    branch_city = “Needham” (account branch ) r 2   branch_name, account_number, balance (r 1 ) r 3   customer_name, account_number (r 2 depositor) account  account – r 2 depositor  depositor – r 3 Delete all loan records with amount in the range of 0 to 50 loan  loan –   amount  0  and amount  50 (loan) account  account –  branch_name = “Perryridge” (account )

31 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Insertion: Review To insert data into a relation, we either:  specify a tuple to be inserted  write a query whose result is a set of tuples to be inserted in relational algebra, an insertion is expressed by: r  r  E where r is a relation and E is a relational algebra expression. The insertion of a single tuple is expressed by letting E be a constant relation containing one tuple.

32 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Insertion Examples: Review Insert information in the database specifying that Smith has $1200 in account A-973 at the Perryridge branch. Provide as a gift for all loan customers in the Perryridge branch, a $200 savings account. Let the loan number serve as the account number for the new savings account. account  account  {(“Perryridge”, A-973, 1200)} depositor  depositor  {(“Smith”, A-973)} r 1  (  branch_name = “Perryridge” (borrower loan)) account  account   branch_name, loan_number,200 (r 1 ) depositor  depositor   customer_name, loan_number (r 1 )

33 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Updating: Review A mechanism to change a value in a tuple without charging all values in the tuple Use the generalized projection operator to do this task Each F i is either  the I th attribute of r, if the I th attribute is not updated, or,  if the attribute is to be updated F i is an expression, involving only constants and the attributes of r, which gives the new value for the attribute

34 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Update Examples: Review Make interest payments by increasing all balances by 5 percent. Pay all accounts with balances over $10,000 6 percent interest and pay all others 5 percent account   account_number, branch_name, balance * 1.06 (  BAL  10000 (account ))   account_number, branch_name, balance * 1.05 (  BAL  10000 (account)) account   account_number, branch_name, balance * 1.05 (account)

35 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Create Table with Integrity Constraints: Review not null primary key (A 1,..., A n ) Example: Declare branch_name as the primary key for branch and ensure that the values of assets are non-negative. create table branch (branch_namechar(15), branch_citychar(30), assetsinteger, primary key (branch_name)) primary key declaration on an attribute automatically ensures not null in SQL-92 onwards, needs to be explicitly stated in SQL-89

36 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Drop and Alter Table Constructs: Review The drop table command deletes all information about the dropped relation from the database. The alter table command is used to add attributes to an existing relation: alter table r add A D where A is the name of the attribute to be added to relation r and D is the domain of A.  All tuples in the relation are assigned null as the value for the new attribute. The alter table command can also be used to drop attributes of a relation: alter table r drop A where A is the name of an attribute of relation r  Dropping of attributes not supported by many databases

37 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Basic Query Structure: Review SQL is based on set and relational operations with certain modifications and enhancements A typical SQL query has the form: select A 1, A 2,..., A n from r 1, r 2,..., r m where P  A i represents an attribute  R i represents a relation  P is a predicate. This query is equivalent to the relational algebra expression. The result of an SQL query is a relation.

38 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Test for Absence of Duplicate Tuples The unique construct tests whether a subquery has any duplicate tuples in its result. Find all customers who have at most one account at the Perryridge branch. select T.customer_name from depositor as T where unique ( select R.customer_name from account, depositor as R where T.customer_name = R.customer_name and R.account_number = account.account_number and account.branch_name = ‘ Perryridge’ )

39 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Summary Relational Algebra Relational Joins  Based on mathematical relations  Operators

40 Computing & Information Sciences Kansas State University Wednesday, 03 Sep 2008CIS 560: Database System Concepts Terminology Database Management Systems (DBMS) Data Manipulation Languages (DMLs) Data Description Languages (DDLs) Client-Server Architecture Relational Databases  Entity  Relationship Relations  Subsets of Cartesian product of two or more sets  Functions Functions  One-to-one (into function, injection)  Onto (surjection)  One-to-one & onto (bijection, permutation, invertible function)

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