CS-Notes/notes/Leetcode-Database 题解.md

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# 595. Big Countries
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https://leetcode.com/problems/big-countries/description/
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## Description
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```html
+-----------------+------------+------------+--------------+---------------+
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| name            | continent  | area       | population   | gdp           |
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+-----------------+------------+------------+--------------+---------------+
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| Afghanistan     | Asia       | 652230     | 25500100     | 20343000      |
| Albania         | Europe     | 28748      | 2831741      | 12960000      |
| Algeria         | Africa     | 2381741    | 37100000     | 188681000     |
| Andorra         | Europe     | 468        | 78115        | 3712000       |
| Angola          | Africa     | 1246700    | 20609294     | 100990000     |
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+-----------------+------------+------------+--------------+---------------+
```
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查找面积超过 3,000,000 或者人口数超过 25,000,000 的国家。
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```html
+--------------+-------------+--------------+
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| name         | population  | area         |
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+--------------+-------------+--------------+
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| Afghanistan  | 25500100    | 652230       |
| Algeria      | 37100000    | 2381741      |
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+--------------+-------------+--------------+
```
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## SQL Schema
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```sql
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DROP TABLE
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IF
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EXISTS World;
CREATE TABLE World ( NAME VARCHAR ( 255 ), continent VARCHAR ( 255 ), area INT, population INT, gdp INT );
INSERT INTO World ( NAME, continent, area, population, gdp )
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VALUES
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( 'Afghanistan', 'Asia', '652230', '25500100', '203430000' ),
( 'Albania', 'Europe', '28748', '2831741', '129600000' ),
( 'Algeria', 'Africa', '2381741', '37100000', '1886810000' ),
( 'Andorra', 'Europe', '468', '78115', '37120000' ),
( 'Angola', 'Africa', '1246700', '20609294', '1009900000' );
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```
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## Solution
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```sql
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SELECT name,
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population,
area
FROM
World
WHERE
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area > 3000000
OR population > 25000000;
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```
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# 627. Swap Salary
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https://leetcode.com/problems/swap-salary/description/
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## Description
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```html
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| id | name | sex | salary |
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|----|------|-----|--------|
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| 1  | A    | m   | 2500   |
| 2  | B    | f   | 1500   |
| 3  | C    | m   | 5500   |
| 4  | D    | f   | 500    |
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```
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只用一个 SQL 查询 sex 字段反转。
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```html
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| id | name | sex | salary |
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|----|------|-----|--------|
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| 1  | A    | m   | 2500   |
| 2  | B    | f   | 1500   |
| 3  | C    | m   | 5500   |
| 4  | D    | f   | 500    |
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```
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## SQL Schema
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```sql
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DROP TABLE
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IF
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EXISTS World;
CREATE TABLE World ( NAME VARCHAR ( 255 ), continent VARCHAR ( 255 ), area INT, population INT, gdp INT );
INSERT INTO World ( NAME, continent, area, population, gdp )
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VALUES
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( 'Afghanistan', 'Asia', '652230', '25500100', '203430000' ),
( 'Albania', 'Europe', '28748', '2831741', '129600000' ),
( 'Algeria', 'Africa', '2381741', '37100000', '1886810000' ),
( 'Andorra', 'Europe', '468', '78115', '37120000' ),
( 'Angola', 'Africa', '1246700', '20609294', '1009900000' );
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```
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## Solution
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```sql
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UPDATE salary
SET sex = CHAR ( ASCII(sex) ^ ASCII( 'm' ) ^ ASCII( 'f' ) );
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```
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# 620. Not Boring Movies
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https://leetcode.com/problems/not-boring-movies/description/
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## Description
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邮件地址表:
```html
+---------+-----------+--------------+-----------+
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|   id    | movie     |  description |  rating   |
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+---------+-----------+--------------+-----------+
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|   1     | War       |   great 3D   |   8.9     |
|   2     | Science   |   fiction    |   8.5     |
|   3     | irish     |   boring     |   6.2     |
|   4     | Ice song  |   Fantacy    |   8.6     |
|   5     | House card|   Interesting|   9.1     |
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+---------+-----------+--------------+-----------+
```
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查找 id 为奇数并且 description 不是 boring 的电影 rating 降序。
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```html
+---------+-----------+--------------+-----------+
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|   id    | movie     |  description |  rating   |
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+---------+-----------+--------------+-----------+
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|   5     | House card|   Interesting|   9.1     |
|   1     | War       |   great 3D   |   8.9     |
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+---------+-----------+--------------+-----------+
```
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## SQL Schema
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```sql
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DROP TABLE
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IF
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EXISTS cinema;
CREATE TABLE cinema ( id INT, movie VARCHAR ( 255 ), description VARCHAR ( 255 ), rating FLOAT ( 2, 1 ) );
INSERT INTO cinema ( id, movie, description, rating )
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VALUES
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( 1, 'War', 'great 3D', 8.9 ),
( 2, 'Science', 'fiction', 8.5 ),
( 3, 'irish', 'boring', 6.2 ),
( 4, 'Ice song', 'Fantacy', 8.6 ),
( 5, 'House card', 'Interesting', 9.1 );
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```
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## Solution
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```sql
SELECT
*
FROM
cinema
WHERE
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id % 2 = 1
AND description != 'boring'
ORDER BY
rating DESC;
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```
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# 596. Classes More Than 5 Students
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https://leetcode.com/problems/classes-more-than-5-students/description/
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## Description
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```html
+---------+------------+
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| student | class      |
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+---------+------------+
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| A       | Math       |
| B       | English    |
| C       | Math       |
| D       | Biology    |
| E       | Math       |
| F       | Computer   |
| G       | Math       |
| H       | Math       |
| I       | Math       |
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+---------+------------+
```
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查找有五名及以上 student  class。
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```html
+---------+
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| Email   |
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+---------+
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| a@b.com |
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+---------+
```
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## SQL Schema
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```sql
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DROP TABLE
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IF
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EXISTS courses;
CREATE TABLE courses ( student VARCHAR ( 255 ), class VARCHAR ( 255 ) );
INSERT INTO courses ( student, class )
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VALUES
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( 'A', 'Math' ),
( 'B', 'English' ),
( 'C', 'Math' ),
( 'D', 'Biology' ),
( 'E', 'Math' ),
( 'F', 'Computer' ),
( 'G', 'Math' ),
( 'H', 'Math' ),
( 'I', 'Math' );
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```
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## Solution
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```sql
SELECT
class
FROM
courses
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GROUP BY
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class
HAVING
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count( DISTINCT student ) >= 5;
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```
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# 182. Duplicate Emails
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https://leetcode.com/problems/duplicate-emails/description/
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## Description
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邮件地址表:
```html
+----+---------+
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| Id | Email   |
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+----+---------+
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| 1  | a@b.com |
| 2  | c@d.com |
| 3  | a@b.com |
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+----+---------+
```
查找重复的邮件地址:
```html
+---------+
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| Email   |
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+---------+
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| a@b.com |
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+---------+
```
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## SQL Schema
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```sql
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DROP TABLE
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IF
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EXISTS Person;
CREATE TABLE Person ( Id INT, Email VARCHAR ( 255 ) );
INSERT INTO Person ( Id, Email )
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VALUES
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( 1, 'a@b.com' ),
( 2, 'c@d.com' ),
( 3, 'a@b.com' );
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```
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## Solution
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```sql
SELECT
Email
FROM
Person
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GROUP BY
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Email
HAVING
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COUNT( * ) >= 2;
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```
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# 196. Delete Duplicate Emails
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## Description
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邮件地址表:
```html
+----+---------+
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| Id | Email   |
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+----+---------+
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| 1  | a@b.com |
| 2  | c@d.com |
| 3  | a@b.com |
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+----+---------+
```
查找重复的邮件地址:
```html
+---------+
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| Email   |
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+---------+
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| a@b.com |
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+---------+
```
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## SQL Schema
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 182 相同。
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## Solution
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连接:
```sql
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DELETE p1
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FROM
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Person p1,
Person p2
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WHERE
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p1.Email = p2.Email
AND p1.Id > p2.Id
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```
子查询:
```sql
DELETE
FROM
Person
WHERE
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id NOT IN ( SELECT id FROM ( SELECT min( id ) AS id FROM Person GROUP BY email ) AS m );
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```
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应该注意的是上述解法额外嵌套了一个 SELECT 语句如果不这么做会出现错误You can't specify target table 'Person' for update in FROM clause。以下演示了这种错误解法。
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```sql
DELETE
FROM
Person
WHERE
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id NOT IN ( SELECT min( id ) AS id FROM Person GROUP BY email );
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```
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参考:[pMySQL Error 1093 - Can't specify target table for update in FROM clause](https://stackoverflow.com/questions/45494/mysql-error-1093-cant-specify-target-table-for-update-in-from-clause)
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# 175. Combine Two Tables
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https://leetcode.com/problems/combine-two-tables/description/
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## Description
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Person 
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```html
+-------------+---------+
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| Column Name | Type    |
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+-------------+---------+
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| PersonId    | int     |
| FirstName   | varchar |
| LastName    | varchar |
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+-------------+---------+
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PersonId is the primary key column for this table.
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```
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Address 
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```html
+-------------+---------+
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| Column Name | Type    |
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+-------------+---------+
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| AddressId   | int     |
| PersonId    | int     |
| City        | varchar |
| State       | varchar |
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+-------------+---------+
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AddressId is the primary key column for this table.
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```
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查找 FirstName, LastName, City, State 数据而不管一个用户有没有填地址信息。
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## SQL Schema
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```sql
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DROP TABLE
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IF
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EXISTS Person;
CREATE TABLE Person ( PersonId INT, FirstName VARCHAR ( 255 ), LastName VARCHAR ( 255 ) );
DROP TABLE
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IF
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EXISTS Address;
CREATE TABLE Address ( AddressId INT, PersonId INT, City VARCHAR ( 255 ), State VARCHAR ( 255 ) );
INSERT INTO Person ( PersonId, LastName, FirstName )
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VALUES
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( 1, 'Wang', 'Allen' );
INSERT INTO Address ( AddressId, PersonId, City, State )
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VALUES
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( 1, 2, 'New York City', 'New York' );
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```
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## Solution
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使用左外连接。
```sql
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SELECT
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    FirstName,
    LastName,
    City,
    State
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FROM
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    Person P
    LEFT JOIN Address AS A ON P.PersonId = A.PersonId;
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```
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# 181. Employees Earning More Than Their Managers
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https://leetcode.com/problems/employees-earning-more-than-their-managers/description/
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## Description
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Employee 
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```html
+----+-------+--------+-----------+
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| Id | Name  | Salary | ManagerId |
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+----+-------+--------+-----------+
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| 1  | Joe   | 70000  | 3         |
| 2  | Henry | 80000  | 4         |
| 3  | Sam   | 60000  | NULL      |
| 4  | Max   | 90000  | NULL      |
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+----+-------+--------+-----------+
```
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查找所有员工,他们的薪资大于其经理薪资。
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## SQL Schema
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```sql
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DROP TABLE
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IF
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EXISTS Employee;
CREATE TABLE Employee ( Id INT, NAME VARCHAR ( 255 ), Salary INT, ManagerId INT );
INSERT INTO Employee ( Id, NAME, Salary, ManagerId )
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VALUES
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( 1, 'Joe', 70000, 3 ),
( 2, 'Henry', 80000, 4 ),
( 3, 'Sam', 60000, NULL ),
( 4, 'Max', 90000, NULL );
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```
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## Solution
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```sql
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SELECT
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    E1.NAME AS Employee
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FROM
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    Employee E1
    INNER JOIN Employee E2 ON E1.ManagerId = E2.Id
    AND E1.Salary > E2.Salary;
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```
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# 183. Customers Who Never Order
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https://leetcode.com/problems/customers-who-never-order/description/
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## Description
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Curstomers 
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```html
+----+-------+
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| Id | Name  |
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+----+-------+
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| 1  | Joe   |
| 2  | Henry |
| 3  | Sam   |
| 4  | Max   |
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+----+-------+
```
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Orders 
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```html
+----+------------+
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| Id | CustomerId |
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+----+------------+
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| 1  | 3          |
| 2  | 1          |
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+----+------------+
```
查找没有订单的顾客信息:
```html
+-----------+
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| Customers |
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+-----------+
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| Henry     |
| Max       |
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+-----------+
```
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## SQL Schema
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```sql
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DROP TABLE
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IF
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EXISTS Customers;
CREATE TABLE Customers ( Id INT, NAME VARCHAR ( 255 ) );
DROP TABLE
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IF
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EXISTS Orders;
CREATE TABLE Orders ( Id INT, CustomerId INT );
INSERT INTO Customers ( Id, NAME )
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VALUES
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( 1, 'Joe' ),
( 2, 'Henry' ),
( 3, 'Sam' ),
( 4, 'Max' );
INSERT INTO Orders ( Id, CustomerId )
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VALUES
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( 1, 3 ),
( 2, 1 );
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```
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## Solution
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左外链接
```sql
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SELECT
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    C.NAME AS Customers
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FROM
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    Customers C
    LEFT JOIN Orders O ON C.Id = O.CustomerId
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WHERE
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    O.CustomerId IS NULL;
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```
子查询
```sql
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SELECT
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    C.NAME AS Customers
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FROM
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    Customers C
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WHERE
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    C.Id NOT IN ( SELECT CustomerId FROM Orders );
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```
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# 184. Department Highest Salary
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https://leetcode.com/problems/department-highest-salary/description/
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## Description
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Employee 
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```html
+----+-------+--------+--------------+
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| Id | Name  | Salary | DepartmentId |
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+----+-------+--------+--------------+
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| 1  | Joe   | 70000  | 1            |
| 2  | Henry | 80000  | 2            |
| 3  | Sam   | 60000  | 2            |
| 4  | Max   | 90000  | 1            |
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+----+-------+--------+--------------+
```
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Department 
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```html
+----+----------+
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| Id | Name     |
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+----+----------+
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| 1  | IT       |
| 2  | Sales    |
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+----+----------+
```
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查找一个 Department 中收入最高者的信息
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```html
+------------+----------+--------+
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| Department | Employee | Salary |
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+------------+----------+--------+
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| IT         | Max      | 90000  |
| Sales      | Henry    | 80000  |
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+------------+----------+--------+
```
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## SQL Schema
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```sql
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DROP TABLE IF EXISTS Employee;
CREATE TABLE Employee ( Id INT, NAME VARCHAR ( 255 ), Salary INT, DepartmentId INT );
DROP TABLE IF EXISTS Department;
CREATE TABLE Department ( Id INT, NAME VARCHAR ( 255 ) );
INSERT INTO Employee ( Id, NAME, Salary, DepartmentId )
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VALUES
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    ( 1, 'Joe', 70000, 1 ),
    ( 2, 'Henry', 80000, 2 ),
    ( 3, 'Sam', 60000, 2 ),
    ( 4, 'Max', 90000, 1 );
INSERT INTO Department ( Id, NAME )
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VALUES
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    ( 1, 'IT' ),
    ( 2, 'Sales' );
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```
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## Solution
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创建一个临时表包含了部门员工的最大薪资。可以对部门进行分组然后使用 MAX() 汇总函数取得最大薪资。
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之后使用连接将找到一个部门中薪资等于临时表中最大薪资的员工。
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```sql
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SELECT
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D.NAME Department,
E.NAME Employee,
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E.Salary
FROM
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Employee E,
Department D,
( SELECT DepartmentId, MAX( Salary ) Salary FROM Employee GROUP BY DepartmentId ) M
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WHERE
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E.DepartmentId = D.Id
AND E.DepartmentId = M.DepartmentId
AND E.Salary = M.Salary;
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```
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# 176. Second Highest Salary
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https://leetcode.com/problems/second-highest-salary/description/
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## Description
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```html
+----+--------+
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| Id | Salary |
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+----+--------+
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| 1  | 100    |
| 2  | 200    |
| 3  | 300    |
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+----+--------+
```
查找工资第二高的员工。
```html
+---------------------+
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| SecondHighestSalary |
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+---------------------+
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| 200                 |
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+---------------------+
```
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如果没有找到那么就返回 null 而不是不返回数据。
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## SQL Schema
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```sql
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DROP TABLE
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IF
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    EXISTS Employee;
CREATE TABLE Employee ( Id INT, Salary INT );
INSERT INTO Employee ( Id, Salary )
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VALUES
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    ( 1, 100 ),
    ( 2, 200 ),
    ( 3, 300 );
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```
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## Solution
2018-06-03 21:57:52 +08:00
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为了在没有查找到数据时返回 null需要在查询结果外面再套一层 SELECT。
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```sql
SELECT
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    ( SELECT DISTINCT Salary FROM Employee ORDER BY Salary DESC LIMIT 1, 1 ) SecondHighestSalary;
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```
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# 177. Nth Highest Salary
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## Description
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查找工资第 N 高的员工。
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## SQL Schema
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 176。
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## Solution
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```sql
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CREATE FUNCTION getNthHighestSalary ( N INT ) RETURNS INT BEGIN
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SET N = N - 1;
RETURN ( SELECT ( SELECT DISTINCT Salary FROM Employee ORDER BY Salary DESC LIMIT N, 1 ) );
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END
```
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# 178. Rank Scores
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https://leetcode.com/problems/rank-scores/description/
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## Description
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得分表:
```html
+----+-------+
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| Id | Score |
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+----+-------+
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| 1  | 3.50  |
| 2  | 3.65  |
| 3  | 4.00  |
| 4  | 3.85  |
| 5  | 4.00  |
| 6  | 3.65  |
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+----+-------+
```
将得分排序,并统计排名。
```html
+-------+------+
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| Score | Rank |
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+-------+------+
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| 4.00  | 1    |
| 4.00  | 1    |
| 3.85  | 2    |
| 3.65  | 3    |
| 3.65  | 3    |
| 3.50  | 4    |
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+-------+------+
```
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## SQL Schema
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```sql
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DROP TABLE
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IF
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EXISTS Scores;
CREATE TABLE Scores ( Id INT, Score DECIMAL ( 3, 2 ) );
INSERT INTO Scores ( Id, Score )
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VALUES
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( 1, 3.5 ),
( 2, 3.65 ),
( 3, 4.0 ),
( 4, 3.85 ),
( 5, 4.0 ),
( 6, 3.65 );
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```
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## Solution
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```sql
SELECT
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    S1.score,
    COUNT( DISTINCT S2.score ) Rank
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FROM
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    Scores S1
    INNER JOIN Scores S2 ON S1.score <= S2.score
GROUP BY
    S1.id
ORDER BY
    S1.score DESC;
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```
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# 180. Consecutive Numbers
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https://leetcode.com/problems/consecutive-numbers/description/
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## Description
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数字表:
```html
+----+-----+
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| Id | Num |
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+----+-----+
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| 1  |  1  |
| 2  |  1  |
| 3  |  1  |
| 4  |  2  |
| 5  |  1  |
| 6  |  2  |
| 7  |  2  |
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+----+-----+
```
查找连续出现三次的数字。
```html
+-----------------+
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| ConsecutiveNums |
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+-----------------+
2018-06-04 14:28:30 +08:00
| 1               |
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+-----------------+
```
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## SQL Schema
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```sql
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DROP TABLE
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IF
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    EXISTS LOGS;
CREATE TABLE LOGS ( Id INT, Num INT );
INSERT INTO LOGS ( Id, Num )
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VALUES
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    ( 1, 1 ),
    ( 2, 1 ),
    ( 3, 1 ),
    ( 4, 2 ),
    ( 5, 1 ),
    ( 6, 2 ),
    ( 7, 2 );
2018-06-03 21:57:52 +08:00
```
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## Solution
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```sql
SELECT
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    DISTINCT L1.num ConsecutiveNums
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FROM
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    Logs L1,
    Logs L2,
    Logs L3
WHERE L1.id = l2.id - 1
    AND L2.id = L3.id - 1
    AND L1.num = L2.num
    AND l2.num = l3.num; 
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```