SQLZOO 是一个在线学习和练习 SQL 的网站。
本文主要记录其中一些不常见的或难度较高的题目解法。
试题
如下是诺贝尔奖表 nobel
:
yr(年份) | subject(科目) | winner(得主) |
---|---|---|
2015 | Chemistry | Aziz Sancar |
2015 | Chemistry | Paul L. Modrich |
2015 | Chemistry | Tomas Lindahl |
2015 | Economics | Angus Deaton |
2015 | Literature | Svetlana Alexievich |
…… | …… | …… |
- 选出
1984
年的得主和科目,按科目、得主排序,但Chemistry
和Physics
科目需要放在最后(第 14 题):
SELECT winner, subject
FROM nobel
WHERE yr = 1984
ORDER BY subject IN ('Physics', 'Chemistry'), subject, winner;
subject IN ('Physics', 'Chemistry')
的结果可以作为数值0
或1
参与排序。
- 有几年没有颁发
Medicine
奖(第 3 题):
SELECT COUNT(DISTINCT yr)
FROM nobel
WHERE yr NOT IN (SELECT DISTINCT yr
FROM nobel
WHERE subject = 'Medicine');
如下是世界国家信息表 world
:
name(国家) | continent(大陆) | area(面积) | population(人口) | gdp(GDP) |
---|---|---|---|---|
Afghanistan | Asia | 652230 | 25500100 | 20343000000 |
Albania | Europe | 28748 | 2831741 | 12960000000 |
Algeria | Africa | 2381741 | 37100000 | 188681000000 |
Andorra | Europe | 468 | 78115 | 3712000000 |
Angola | Africa | 1246700 | 20609294 | 100990000000 |
…… | …… | …… | …… | …… |
- 哪些国家的 GDP 比欧洲的所有国家都高(第 6 题):
SELECT name
FROM world
WHERE GDP > ALL (SELECT GDP
FROM world
WHERE GDP IS NOT NULL AND continent = 'Europe');
有些国家的 GDP 数值可能为
NULL
,所以子查询中必须使用GDP IS NOT NULL
作为查询条件之一,以避免NULL
导致的结果无记录。
- 选出每个大陆面积最大的国家(第 7 题):
SELECT continent, name, area
FROM world AS W1
WHERE area >= ALL (SELECT area
FROM world AS W2
WHERE W1.continent = W2.continent);
- 选出每个大陆按字母顺序排名第一的国家(第 8 题):
SELECT continent, name
FROM world AS W1
WHERE name < ALL (SELECT name
FROM world AS W2
WHERE W1.continent = W2.continent
AND W1.name <> W2.name);
- 选出各个国家人口数均不大于 25000000 的大陆的所有国家(第 9 题):
SELECT name, continent, population
FROM world AS W1
WHERE 25000000 >= ALL (SELECT population
FROM world AS W2
WHERE W1.continent = W2.continent);
------------------------ 多解分隔线 ------------------------
SELECT name, continent, population
FROM world AS W1
WHERE NOT EXISTS (SELECT *
FROM world AS W2
WHERE W1.continent = W2.continent
AND W2.population > 25000000);
如下是电影信息表 movie
:
id(主键) | title(电影名) | yr(年份) | director(导演,actor 表外键) | budget(成本) | gross(票房) |
---|---|---|---|---|---|
10003 | "Crocodile" Dundee II | 1988 | 38 | 15800000 | 239606210 |
10004 | 'Til There Was You | 1997 | 49 | 10000000 | NULL |
…… | …… | …… | …… | …… | …… |
如下是演员表 actor
:
id(主键) | name(演员名) |
---|---|
20 | Paul Hogan |
50 | Jeanne Tripplehorn |
…… | …… |
如下是电影演员关系表 casting
:
movieid(movie 表外键) | actorid(actor 表外键) | ord(排序号) |
---|---|---|
10003 | 20 | 4 |
10004 | 50 | 1 |
…… | …… | …… |
- 哪些年演员
John Travolta
参与拍摄的电影最多(第 11 题):
SELECT yr, COUNT(*)
FROM movie INNER JOIN casting ON id = movieid
INNER JOIN actor ON actorid = actor.id
WHERE name = 'John Travolta'
GROUP BY yr
HAVING COUNT(*) = (SELECT MAX(count)
FROM (SELECT yr, COUNT(*) AS count
FROM movie INNER JOIN casting ON id = movieid
INNER JOIN actor ON actorid = actor.id
WHERE name = 'John Travolta'
GROUP BY yr) AS T);
- 演员
Julie Andrews
参与拍摄了哪些电影?选出电影名和领衔主演(第 12 题):
SELECT title, name
FROM movie INNER JOIN casting ON id = movieid
INNER JOIN actor ON actorid = actor.id
WHERE ord = 1
AND EXISTS (SELECT *
FROM casting AS C
WHERE movie.id = C.movieid
AND C.actorid = (SELECT id
FROM actor AS A
WHERE A.name = 'Julie Andrews'));
--------------------------------- 多解分隔线 ---------------------------------
SELECT title, name
FROM movie INNER JOIN casting ON id = movieid
INNER JOIN actor ON actorid = actor.id
WHERE ord = 1
AND movieid IN (SELECT movieid
FROM casting
WHERE actorid = (SELECT id
FROM actor
WHERE name = 'Julie Andrews'));
- 和演员
Art Garfunkel
共事过的演员有哪些(第 15 题):
SELECT DISTINCT name
FROM actor AS A INNER JOIN casting AS C ON id = actorid
WHERE name <> 'Art Garfunkel'
AND EXISTS (SELECT *
FROM casting
WHERE C.movieid = movieid
AND actorid = (SELECT id
FROM actor
WHERE name = 'Art Garfunkel'));
------------------------------- 多解分隔线 -------------------------------
SELECT DISTINCT name
FROM actor INNER JOIN casting ON id = actorid
WHERE name <> 'Art Garfunkel'
AND movieid IN (SELECT movieid
FROM casting
WHERE actorid = (SELECT id
FROM actor
WHERE name = 'Art Garfunkel'));
如下是公交站台表 stops
:
id(主键) | name(站台名) |
---|---|
1 | Aberlady |
2 | Abington |
3 | Amisfield Park |
4 | Ancrum |
5 | Armadale |
…… | …… |
如下是公交路线表 route
:
num(公交编号) | company(公司) | pos(站台序号) | stop(站台号,stops 表外键) |
---|---|---|---|
1 | LRT | 1 | 137 |
1 | LRT | 2 | 99 |
1 | LRT | 3 | 59 |
1 | LRT | 4 | 66 |
1 | LRT | 5 | 42 |
…… | …… | …… | …… |
-
Craiglockhart
站到London Road
站直达的公交有哪些(第 6 题):
SELECT R1.company, R1.num, S1.name, S2.name
FROM route AS R1 INNER JOIN route AS R2 ON R1.company = R2.company AND R1.num = R2.num
INNER JOIN stops AS S1 ON R1.stop = S1.id
INNER JOIN stops AS S2 ON R2.stop = S2.id
WHERE S1.name = 'Craiglockhart' AND S2.name = 'London Road';
-
Craiglockhart
站到Sighthill
站中转 1 次的方案有哪些(第 10 题):
SELECT DISTINCT R1.num, R1.company, name, R4.num, R4.company
FROM route AS R1 INNER JOIN route AS R2 ON R1.num = R2.num AND R1.company = R2.company
INNER JOIN route AS R3 ON R2.stop = R3.stop
INNER JOIN route AS R4 ON R3.num = R4.num AND R3.company = R4.company
INNER JOIN stops ON R2.stop = id
WHERE R1.stop = (SELECT id FROM stops WHERE name = 'Craiglockhart')
AND R4.stop = (SELECT id FROM stops WHERE name = 'Sighthill');
某些公交为环线,此处如果不用 DISTINCT 会出现重复数据。
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