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SQL自学网习题答案

时间:2022-08-16 18:35:05浏览次数:58  
标签:电影 sales Boxoffice movies 答案 SQL 习题 自学 SELECT

附学习网址:自学SQL网(教程 视频 练习全套)

第一节:

1【初体验】这是第一题,请你先将左侧的输入框里的内容清空,然后请输入下面的SQL,您将看到所有电影标题:

答案:SELECT * FROM movies;

2【初体验】请输入如下SQL你将看到4条电影(切记先清空数据框且出错要耐心比对):

答案:SELECT title,director FROM movies WHERE Id < 5

3【初体验】输入如下SQL你将看到电影总条数:

答案:SELECT count(*) FROM movies

4【初体验】SQL可以直接做计算,下面的SQL计算1+1的和,请输入:

答案:SELECT 1+1

 

第二节:

1【简单查询】找到所有电影的名称

答案:SELECT title FROM movies

2【简单查询】找到所有电影的导演

答案:SELECT Director FROM movies

3【简单查询】找到所有电影的名称和导演

答案:SELECT Director,title FROM movies

4【简单查询】找到所有电影的名称和上映年份

答案:SELECT title,Year FROM movies

5【简单查询】找到所有电影的所有信息

答案:SELECT * FROM movies

6【简单查询】找到所有电影的名称,Id和播放时长

答案:SELECT title,Id,Length_minutes FROM movies

 

第三节:

1【简单条件】找到id为6的电影

答案:SELECT * FROM movies where Id=6

2【简单条件】找到在2000-2010年间year上映的电影

答案:SELECT * FROM movies where Year>=2000 and Year<=2010

3【简单条件】找到不是在2000-2010年间year上映的电影

答案:SELECT * FROM movies where Year<2000 or Year >2010

4【简单条件】找到头5部电影

答案:SELECT * FROM movies where Id<=5

5【简单条件】找到2010(含)年之后的电影里片长小于两个小时的片子

答案:SELECT * FROM movies where Year>=2010 and Length_minutes<120

 

第四节:

1【复杂条件】找到所有Toy Story系列电影

答案:SELECT * FROM movies where Title LIKE “%Toy Story%”

2【复杂条件】找到所有John Lasseter导演的电影

答案:SELECT * FROM movies where Director =‘John Lasseter’

3【复杂条件】找到所有不是John Lasseter导演的电影

答案:SELECT * FROM movies where Director !=‘John Lasseter’

4【复杂条件】找到所有电影名为 “WALL-” 开头的电影

答案:SELECT * FROM movies where Title LIKE ‘WALL-%’

5【复杂条件】有一部98年电影中文名《虫虫危机》请给我找出来

答案:SELECT * FROM movies where Title = “A Bug’s Life”

 

第五节:

1【结果排序】按导演名排重列出所有电影(只显示导演),并按导演名正序排列

答案:SELECT DISTINCT Director FROM movies ORDER BY Director ASC

2【结果排序】列出按上映年份最新上线的4部电影

答案:SELECT * FROM movies ORDER BY Year DESC limit 4

3【结果排序】按电影名字母序升序排列,列出前5部电影

答案:SELECT * FROM movies ORDER BY Title ASC limit 5

4【结果排序】按电影名字母序升序排列,列出上一题之后的5部电影

答案:SELECT * FROM movies ORDER BY Title ASC limit 5 OFFSET 5

5【结果排序】如果按片长排列,John Lasseter导演导过片长第3长的电影是哪部,列出名字即可

答案:SELECT Title FROM movies WHERE Director=‘John Lasseter’ ORDER BY Length_minutes ASC limit 1 offset 2

 

第六节:

1【复习】列出所有加拿大人的Canadian信息(包括所有字段)

答案:SELECT * FROM north_american_cities WHERE Country = ‘Canada’

2【复习】列出所有在Chicago西部的城市,从西到东排序(包括所有字段)

答案:SELECT * FROM north_american_cities WHERE Longitude<-87.629798 ORDER BY Longitude DESC

3【复习】用人口数population排序,列出墨西哥Mexico最大的2个城市(包括所有字段)

答案:SELECT * FROM North_american_cities WHERE Country=‘Mexico’ ORDER BY Population ASC LIMIT 2 OFFSET 1

4【复习】列出美国United States人口3-4位的两个城市和他们的人口(包括所有字段)

答案:SELECT * FROM North_american_cities WHERE country = ‘United States’ ORDER BY Population DESC LIMIT 2 OFFSET 2

 

第七节:

1【联表】找到所有电影的国内Domestic_sales和国际销售额

答案:SELECT * FROM movies inner join boxoffice on movies.id = boxoffice.movie_id

2【联表】找到所有国际销售额比国内销售大的电影

答案:SELECT * FROM movies inner join Boxoffice on Movies.Id = Boxoffice.Movie_id WHERE Domestic_sales<International_sales

3【联表】找出所有电影按市场占有率rating倒序排列 *****

答案:SELECT * FROM movies inner join Boxoffice on Movies.Id = Boxoffice.Movie_id ORDER BY rating DESC

4【联表】每部电影按国际销售额比较,排名最靠前的导演是谁,国际销量多少

答案:SELECT Director,International_sales FROM movies inner join Boxoffice on Movies.Id=Boxoffice.Movie_id ORDER BY International_sales DESC LIMIT 1

 

第八节: 

1【复习】找到所有有雇员的办公室(buildings)名字

答案:SELECT DISTINCT building FROM employees where building is not null

2【复习】找到所有办公室里的所有角色(包含没有雇员的),并做唯一输出(DISTINCT)

答案:SELECT DISTINCT buildings.building_name, employees.Role FROM buildings left join employees on buildings.building_name = employees.building

3【难题】找到所有有雇员的办公室(buildings)和对应的容量

答案:SELECT DISTINCT Buildings.Building_name,Buildings.Capacity FROM Employees inner JOIN Buildings ON Employees.Building=Buildings.Building_name WHERE Building is not null

 

第九节:

1【复习】找到雇员里还没有分配办公室的(列出名字和角色就可以)

答案:SELECT Role,Name FROM employees WHERE Building is null

2【难题】找到还没有雇员的办公室

答案:SELECT Building_name FROM buildings left join employees on buildings.building_name = employees.building WHERE Role IS NULL

 

第十节:

1【计算】列出所有的电影ID,名字和销售总额(以百万美元为单位计算)

答案:SELECT Id,Title,(Domestic_sales+International_sales)/1000000 as 销售总额 FROM movies inner join Boxoffice on Movies.Id=Boxoffice.Movie_id

2【计算】列出所有的电影ID,名字和市场指数(Rating的10倍为市场指数)

答案:SELECT Id,Title,rating*10 as 市场指数 FROM movies inner join Boxoffice on Movies.Id=Boxoffice.Movie_id

3【计算】列出所有偶数年份的电影,需要电影ID,名字和年份

答案:SELECT Id,Title,year FROM movies inner join Boxoffice on Movies.Id=Boxoffice.Movie_id WHERE Year%2=0

4【难题】John Lasseter导演的每部电影每分钟值多少钱,告诉我最高的3个电影名和价值就可以

答案:SELECT Title,(Domestic_sales+International_sales)/Length_minutes as price FROM movies inner join Boxoffice on Movies.Id=Boxoffice.Movie_id WHERE Director=‘John Lasseter’ order by price DESC limit 3

 

第十一节:

1【统计】找出就职年份最高的雇员(列出雇员名字+年份)

答案:SELECT Name,max(Years_employed) FROM employees

2【分组】按角色(Role)统计一下每个角色的平均就职年份

答案:SELECT role,avg(Years_employed) FROM employees group by role

3【分组】按办公室名字总计一下就职年份总和

答案:SELECT Building,sum(Years_employed) FROM employees group by Building

4【难题】每栋办公室按人数排名,不要统计无办公室的雇员

答案:SELECT Building,count(Building)as count FROM employees group by Building order by count DESC limit 2

{SELECT building,count(*) as count FROM employees where building is NOT null group by building

 

第十二节:

1【统计】统计一下Artist角色的雇员数量

答案:SELECT count() FROM employees WHERE Role = ‘Artist’

2【分组】按角色统计一下每个角色的雇员数量

答案:SELECT role,count() FROM employees group by role

3【分组】算出Engineer角色的就职年份总计

答案:SELECT sum(Years_employed) FROM employees where role='Engineer’group by Role

4【难题】按角色分组算出每个角色按有办公室和没办公室的统计人数(列出角色,数量,有无办公室,注意一个角色如果部分有办公室,部分没有需分开统计)

答案:SELECT count(*) as count,Role,building is not null as bn FROM employees group by Role,bn

 

第十三节:

1【复习】统计出每一个导演的电影数量(列出导演名字和数量)

答案:SELECT DIRECTOr, count() FROM movies group by director

2【复习】统计一下每个导演的销售总额(列出导演名字和销售总额)

答案:SELECT DIRECTOr,sum(Domestic_sales)+sum(International_sales) as 销售总额 FROM movies inner join Boxoffice on Movies.Id = Boxoffice.Movie_id group by Director

3【难题】按导演分组计算销售总额,求出平均销售额冠军(统计结果过滤掉只有单部电影的导演,列出导演名,总销量,电影数量,平均销量)

答案:SELECT sum(Domestic_sales+International_sales) as sum_sale,director,count() as count, sum(Domestic_sales+International_sales)/count() as avg_sale FROM movies left join boxoffice on movies.id = boxoffice.movie_id group by director having count > 1 order by avg_sale desc limit 1

**** SELECT Director, SUM(Domestic_sales)+SUM(International_sales) AS TOTAL,count() AS COUNTS,(SUM(Domestic_sales)+SUM(International_sales))/count(*) as avg FROM MOVIES LEFT join Boxoffice on movies.Id=Boxoffice.movie_id group by director having countS > 1 order by avg DESC LIMIT 1

4【变态难】找出每部电影和单部电影销售冠军之间的销售差,列出电影名,销售额差额

答案:SELECT (SELECT (Domestic_sales+International_sales) as total_sale FROM movies left join boxoffice on movies.id = boxoffice.movie_id order by total_sale desc limit 1) - (Domestic_sales+International_sales) as sale_diff,title FROM movies left join boxoffice on movies.id = boxoffice.movie_id order by sale_diff desc

 

标签:电影,sales,Boxoffice,movies,答案,SQL,习题,自学,SELECT
From: https://www.cnblogs.com/txq521/p/16592518.html

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