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SQL, RA, Sets, Bags Fundamental difference between theoretical RA and practical application of it in DBMSs and SQL RA  uses sets SQL  uses bags (multisets)

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Presentation on theme: "SQL, RA, Sets, Bags Fundamental difference between theoretical RA and practical application of it in DBMSs and SQL RA  uses sets SQL  uses bags (multisets)"— Presentation transcript:

1 SQL, RA, Sets, Bags Fundamental difference between theoretical RA and practical application of it in DBMSs and SQL RA  uses sets SQL  uses bags (multisets) There are good performance reasons for using bags: Queries involve 2+ join, union, etc., which would require an extra pass through the relation being built There are times we WANT every instance, particularly for aggregate functions (e.g. taking an average) Downside: Extra memory

2 Section 5.1 Topics include:
Union, Difference, Intersection and how they are affected by operation over bags Projection operator over bags Selection operator over bags Product and join over bags All the above follow what you would expect Other topics in 5.1: Algebraic laws of set operators applied to bags Make sure you remember duplicate behavior. If t is in R m times and in S n times, then: R U S will have m+n copies of t R INTERSECTION S will have min(m,n) copies of t R – S will have max(0,m-n) - Projection and selection do not eliminate duplicates that result

3 Examples: set operators over bags
{1,2,1} ∪ {1,1,2,3,1} = {1,1,1,1,1,2,2,3} {1,2,1,1} ∩ {1,2,1,3} = {1, 1, 2} {1,2,1,1,1} – {1,1,2,3} = {1,1}

4 Exercise 5.1.3a

5 Exercise 5.1.3b πbore(Ships |><| Classes)

6 More relational algebra

7 δ – Duplicate elimination
δ(R) Eliminate duplicates from relation R (i.e. converts a relation from a bag to set representation) R2 := δ(R1) R2 consists of one copy of each tuple that appears in R2 one or more times DISTINCT modifier in SELECT stmt

8 δ - Example R = ( A B ) 1 2 3 4 δ(R) = A B 1 2 3 4

9 τ – Sorting R2 := τL(R1) Benefit: L – list of some attributes of R1
L specifies the order of sorting Increasing order Tuples with identical components in L specify no order Benefit: Obvious – ordered output Not so obvious – stored sorted relations can have substantial query benefit Recall running time for binary search O(log n) is far superior than O(n)

10 Aggregation Operators
Use to summarize something about the values in attribute of a relation Produces a single value as a result SUM(attr) AVG(attr) MIN(attr) MAX(attr) COUNT(attr)

11 Example: Aggregation R = ( A B ) 1 3 3 4 3 2 SUM(A) = 7 COUNT(A) = 3
1 3 3 4 3 2 SUM(A), COUNT(A), MAX(B), AVG(B) = ? SUM(A) = 7 COUNT(A) = 3 MAX(B) = 4 AVG(B) = 3

12 Grouping Operator R2 := γL(R1) L is a list of elements that are:
Individual attributes of R1 Called grouping attributes Aggregated attribute of R1 Use an arrow and a new name to rename the component R2 projects only what is in L

13 How does γL(R) work? Form one group for each distinct list of values for those attributes in R Within each group, compute AGG(A) for each aggregation on L Result has one tuple for each group The grouping attributes' values for the group The aggregations over all tuples of the group (for the aggregated attributes)

14 Example: Grouping / Aggregation
R = ( A B C ) 1 2 3 4 5 6 1 2 5 1 3 5 γA,B,AVG(C)->X (R) = ?? Then, average C within groups: A B X 1 2 4 4 5 6 1 3 5 First, partition R by A and B : A B C 1 2 3 1 3 5 Note that groups formed by ALL grouping attributes first

15 Note about aggregation
If R is a relation, and R has attributes A1…An, then δ(R) == γA1,A2,…,An(R) Grouping on ALL attributes in R eliminates duplicates i.e. δ is not really necessary Also, if relation R is also a set, then πA1,A2,…,An(R) = γA1,A2,…,An(R)

16 Extended Projection Recall R2 := πL(R1)
R2 contains only L attributes from R1 L can be extended to allow arbitrary expressions: Renaming (e.g., A -> B) Arithmetic expressions (e.g., A + B -> SUM) Duplicate attributes (i.e., include in L multiple times)

17 Example: Extended Projection
R = ( A B ) 1 2 3 4 πA+B->C,A,A (R) = C A1 A2 3 1 1 7 3 3

18 Outer joins Recall that the standard natural join occurs only if there is a match from both relations A tuple of R that has NO tuple of S with which it can join is said to be dangling Vice versa applies Outer join: preserves dangling tuples in join Missing components set to NULL R |>◦<|C S. This is a bad approximation of the symbol – see text NO C? Natural outer join We visited this already – SELECT * FROM R LEFT JOIN S ON…

19 Example: Outer Join R = ( A B ) S = ( B C ) 1 2 2 3 4 5 6 7
(1,2) joins with (2,3), but the other two tuples are dangling. R |>◦<| S = A B C 1 2 3 4 5 NULL NULL 6 7

20 Types of outer joins R |>◦<| R S SQL: R |>◦<| S
No condition, requires matching attributes Pads dangling tuples from both side R |>◦<| L S Pad dangling tupes of R only R |>◦<| R S Pad dangling tuples of S only SQL: R NATURAL {LEFT | RIGHT} JOIN S R {LEFT | RIGHT} JOIN S NOTE MySQL does not allow a FULL OUTER JOIN! Only LEFT or RIGHT Just UNION a left outer join and a right outer join… mostly

21 A+B A2 B2 1 0 1 5 4 9 6 4 16 7 9 16 B+1 C-1 1 0 3 3 3 4 4 3 1 1

22 A B 0 1 2 3 2 4 3 4 A SUM(B) SELECT A,SUM(B) FROM R GROUP BY A

23 A 2 3 SELECT A FROM R GROUP BY A; SELECT DISTINCT A FROM R;

24 What if MAX(C) was SUM(C)? A MAX(C) 2 4
SUM(C) gives you A | SUM(C) 2 | 8 SELECT A,MAX(C) FROM R NATURAL JOIN S GROUP BY A;

25 SELECT * FROM R NATURAL LEFT JOIN S;
A B C 2 3 4 0 1 ┴ 2 4 ┴ 3 4 ┴ If the group has matches, there is no SELECT * FROM R NATURAL LEFT JOIN S;

26 SELECT * FROM R NATURAL RIGHT JOIN S;
A B C 2 3 4 ┴ 0 1 ┴ 2 4 ┴ 2 5 ┴ 0 2 If the group has matches, there is no SELECT * FROM R NATURAL RIGHT JOIN S;

27 SELECT. FROM R NATURAL LEFT JOIN S UNION SELECT
SELECT * FROM R NATURAL LEFT JOIN S UNION SELECT * FROM R NATURAL RIGHT JOIN S; A B C 2 3 4 0 1 ┴ 2 4 ┴ 3 4 ┴ ┴ 0 1 ┴ 2 4 ┴ 2 5 ┴ 0 2 We could use UNION ALL, but then we end up with FOUR copies of (2,3,4) since it is included in both LEFT and RIGHT join Right?

28 SELECT. FROM R NATURAL LEFT JOIN S UNION ALL SELECT
SELECT * FROM R NATURAL LEFT JOIN S UNION ALL SELECT * FROM R NATURAL RIGHT JOIN S WHERE A IS NULL; You can NOT use comparison operators with NULL. NULL means "missing value", and will always return FALSE. Use IS NULL or IS NOT NULL to check for null

29 A R.B S.B C 2 3 ┴ ┴ 2 4 ┴ ┴ 3 4 ┴ ┴ ┴ ┴ 0 1 ┴ ┴ 0 2 We could use UNION ALL, but then we end up with FOUR copies of (2,3,4) since it is included in both LEFT and RIGHT join

30 Back to SQL

31 Aggregations SUM, AVG, COUNT, MIN, and MAX can be applied to a column in a SELECT clause Produces an aggregation on the attribute COUNT(*) count the number of tuples Use DISTINCT inside of an aggregation to eliminate duplicates in the function

32 Example: Sells(bar, beer, price) Find the average price of Guinness
SELECT AVG(price) FROM Sells WHERE beer = 'Guinness'; Find the number of different prices charged for Guinness SELECT COUNT(DISTINCT price) AS "# Prices"

33 Grouping SELECT attr(s) FROM tbls WHERE cond_expr GROUP BY attr(s)
The resulting SELECT-FROM-WHERE relation determined FIRST, then grouped according to GROUP BY clause MySQL will also sort the relations according to attributes listed in GROUP BY clause Therefore, allows optional ASC or DESC (just like ORDER BY) Aggregations are applied only within each group

34 Grouping and NULLS

35 Note on NULL and Aggregation
NULL values in a tuple: never contribute to a sum, average or count can never be a min or max of an attribute If all values for an attribute are NULL, then the result of an aggregation is NULL Exception: COUNT of an empty set is 0 NULL values are treated as ordinary values when forming groups Could illustrate NULL grouping with SELECT * from Outcomes LEFT JOIN Ships ON (Outcomes.ship = Ships.name); Then add GROUP BY launched, modify SELECT launched, count(*)

36 Example: Grouping Sells(bar, beer, price) Frequents(drinker, bar)
Find the average price for each beer SELECT beer, AVG(price) FROM Sells GROUP BY beer; Find for each drinker the average price of Guinness at the bars they frequent SELECT drinker, AVG(price) FROM Frequents NATURAL JOIN Sells WHERE beer = 'Guinness' GROUP BY drinker;

37 Restrictions Example: Book states that this is illegal SQL
Find the bar that sells Guinness the cheapest SELECT bar, MIN(price) FROM Sells WHERE beer = 'Guinness'; Is this correct? Book states that this is illegal SQL if an aggregation used, then each SELECT element should be aggregated or be an attribute in GROUP BY MySQL allows the above, but such queries will give meaningless results What happens if there are multiple bars that sell Guinness? How does the query know which one is minimum?

38 Example of confusing aggregation
Find the country of the ship with bore of 15 with the smallest displacement SELECT country, MIN(displacement) FROM Classes WHERE bore = 15; Demonstrate this! SELECT country, MIN(displacement) from Classes where bore = 15;

39 Not quite the correct answer!
Be sure to follow the rules for aggregation.

40 What if we wanted the smallest country listed only?
SELECT country FROM Classes WHERE displacement IN (select MIN(displacement) FROM Classes);

41 HAVING Clause HAVING cond Rules for conditions in HAVING clause:
Follows a GROUP BY clause Condition applies to each possible group Groups not satisfying condition are eliminated Rules for conditions in HAVING clause: Aggregated attributes: Any attribute in relation in FROM clause can be aggregated Only applies to the group being tested Unaggregated attributes Only attributes in GROUP BY list mySQL is more lenient with this, though they result in meaningless information

42 Example: HAVING Sells(bar, beer, price)
Find the average price of those beers that are served in at least three bars SELECT beer, AVG(price) FROM Sells GROUP BY beer HAVING COUNT(*) >= 3;

43 Example: HAVING Sells(bar, beer, price) Beers(name, manf)
Find the average price of beers that are either served in at least three bars or are manufactured by Sam Adams SELECT beer, AVG(price) FROM Sells GROUP BY beer HAVING COUNT(*) >= 3 OR beer IN (SELECT name FROM Beers WHERE manf = 'Sam Adams'); Demonstrates aggregated and unaggregated attribute

44 Find the average displacement of ships from each country having at least two classes
SELECT country, AVG(displacement) FROM Classes GROUP BY country HAVING count(*) >= 2; Notice, you can use count(*) >= 2 because each aggregated condition applies only to the group!

45 Summary so far SELECT S FROM R1,…,Rn WHERE C1 GROUP BY a1,…,ak
HAVING C2 ORDER BY b1,…,bk; S attributes from R1,…,Rn or aggregates C1 are conditions on R1,…,Rn a1,…,ak are attributes from R1,…,Rn C2 are conditions based on any attribute, or on any aggregation in GROUP BY clause b1,…,bk are attributes on R1,…,Rn

46 Exercises

47 Exercise 6.2.3f SELECT battle FROM Outcomes
INNER JOIN Ships ON Outcomes.ship = Ships.name NATURAL JOIN Classes GROUP BY country, battle HAVING COUNT(ship) >= 3; Now this makes sense!

48 Exercise 6.4.7a SELECT COUNT(type) FROM Classes WHERE type = 'bb';

49 Exercise 6.4.7b SELECT AVG(numGuns) AS 'Avg Guns' FROM Classes WHERE type = 'bb';

50 Exercise 6.4.7c SELECT AVG(numGuns) AS 'Avg Guns' FROM Classes NATURAL JOIN Ships WHERE type = 'bb';

51 Exercise 6.4.7d SELECT class, MIN(launched) AS First_Launched FROM Classes NATURAL JOIN Ships GROUP BY class;

52 Exercise 6.4.7e SELECT C.class, COUNT(O.ship) AS '# sunk'
FROM Classes AS C NATURAL JOIN Ships AS S INNER JOIN Outcomes AS O ON S.name = O.ship WHERE O.result = 'sunk' GROUP BY C.class; Why so few? There are many classes… many ships.. many outcomes. So why so few answers? SELECT * from Outcomes LEFT JOIN Ships ON Outcomes.ship = Ships.name WHERE result = 'sunk'; Notice … only ONE match!

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