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1. 力扣SQL1076：项目员工2

1.1 题目：

表：Project

+-------------+---------+
| Column Name | Type    |
+-------------+---------+
| project_id  | int     |
| employee_id | int     |
+-------------+---------+
(project_id, employee_id) 是该表的主键(具有唯一值的列的组合)。
employee_id 是该表的外键(reference 列)。
该表的每一行都表明 employee_id 的雇员正在处理 Project 表中 project_id 的项目。

表：Employee

+------------------+---------+
| Column Name      | Type    |
+------------------+---------+
| employee_id      | int     |
| name             | varchar |
| experience_years | int     |
+------------------+---------+
employee_id 是该表的主键(具有唯一值的列)。
该表的每一行都包含一名雇员的信息。

编写一个解决方案来报告所有拥有最多员工的 项目。

以 任意顺序 返回结果表。

返回结果格式如下所示。

示例 1：

输入：
Project table:
+-------------+-------------+
| project_id  | employee_id |
+-------------+-------------+
| 1           | 1           |
| 1           | 2           |
| 1           | 3           |
| 2           | 1           |
| 2           | 4           |
+-------------+-------------+
Employee table:
+-------------+--------+------------------+
| employee_id | name   | experience_years |
+-------------+--------+------------------+
| 1           | Khaled | 3                |
| 2           | Ali    | 2                |
| 3           | John   | 1                |
| 4           | Doe    | 2                |
+-------------+--------+------------------+
输出：
+-------------+
| project_id  |
+-------------+
| 1           |
+-------------+
解释：
第一个项目有3名员工，第二个项目有2名员工。

1.2 思路：

分组过滤即可。

1.3 题解：

-- 转念一想我为啥要用题目给的第二张表
select project_id
from Project 
group by project_id  
having count(*) >= all(select count(*) from Project group by project_id
)

2. 牛客SQL热题210：统计出当前各个title类型对应的员工当前薪水对应的平均工资

2.1 题目：

描述

有一个员工职称表titles简况如下:

emp_no	title	from_date	to_date
10001	Senior Engineer	1986-06-26	9999-01-01
10003	Senior Engineer	2001-12-01	9999-01-01
10004	Senior Engineer	1995-12-01	9999-01-01
10006	Senior Engineer	2001-08-02	9999-01-01
10007	Senior Staff	1996-02-11	9999-01-01

有一个薪水表salaries简况如下:

emp_no	salary	from_date	to_date
10001	88958	1986-06-26	9999-01-01
10003	43311	2001-12-01	9999-01-01
10004	74057	1995-12-01	9999-01-01
10006	43311	2001-08-02	9999-01-01
10007	88070	2002-02-07	9999-01-01

请你统计出各个title类型对应的员工薪水对应的平均工资avg。结果给出title以及平均工资avg，并且以avg升序排序，以上例子输出如下:

title	avg(s.salary)
Senior Engineer	62409.2500
Senior Staff	88070.0000

示例1

输入：drop table if exists  `salaries` ; 
drop table if exists  titles;
CREATE TABLE `salaries` (
`emp_no` int(11) NOT NULL,
`salary` int(11) NOT NULL,
`from_date` date NOT NULL,
`to_date` date NOT NULL,
PRIMARY KEY (`emp_no`,`from_date`));
CREATE TABLE titles (
`emp_no` int(11) NOT NULL,
`title` varchar(50) NOT NULL,
`from_date` date NOT NULL,
`to_date` date DEFAULT NULL);
INSERT INTO salaries VALUES(10001,88958,'1986-06-26','9999-01-01');
INSERT INTO salaries VALUES(10003,43311,'2001-12-01','9999-01-01');
INSERT INTO salaries VALUES(10004,74057,'1995-12-01','9999-01-01');
INSERT INTO salaries VALUES(10006,43311,'2001-08-02','9999-01-01');
INSERT INTO salaries VALUES(10007,88070,'2002-02-07','9999-01-01');INSERT INTO titles VALUES(10001,'Senior Engineer','1986-06-26','9999-01-01');
INSERT INTO titles VALUES(10003,'Senior Engineer','2001-12-01','9999-01-01');
INSERT INTO titles VALUES(10004,'Senior Engineer','1995-12-01','9999-01-01');
INSERT INTO titles VALUES(10006,'Senior Engineer','2001-08-02','9999-01-01');
INSERT INTO titles VALUES(10007,'Senior Staff','1996-02-11','9999-01-01');
复制输出：Senior Engineer|62409.2500
Senior Staff|88070.0000

2.2 思路：

聚合函数即可。

2.3 题解：

-- 感觉这题考察的就是反引号吧，因为avg是关键字
select title, avg(salary) `avg(s.salary)`
from titles t1
join salaries t2
on t1.emp_no = t2.emp_no
group by title

3. 牛客SQL热题213：查找所有员工的last_name和first_name以及对应的dept_name

3.1 题目：

描述

有一个员工表employees简况如下:

emp_no	birth_date	first_name	last_name	gender	hire_date
10001	1953-09-02	Georgi	Facello	M	1986-06-26
10002	1964-06-02	Bezalel	Simmel	F	1985-11-21
10003	1959-12-03	Parto	Bamford	M	1986-08-28
10004	1954-05-01	Chirstian	Koblick	M	1986-12-01

有一个部门表departments表简况如下:

dept_no	dept_name
d001	Marketing
d002	Finance
d003	Human Resources

有一个，部门员工关系表dept_emp简况如下:

emp_no	dept_no	from_date	to_date
10001	d001	1986-06-26	9999-01-01
10002	d001	1996-08-03	9999-01-01
10003	d002	1990-08-05	9999-01-01

请你查找所有员工的last_name和first_name以及对应的dept_name，也包括暂时没有分配部门的员工，以上例子输出如下:

last_name	first_name	dept_name
Facello	Georgi	Marketing
Simmel	Bezalel	Marketing
Bamford	Parto	Finance
Koblick	Chirstian	NULL

示例1

输入：drop table if exists  `departments` ; 
drop table if exists  `dept_emp` ; 
drop table if exists  `employees` ; 
CREATE TABLE `departments` (
`dept_no` char(4) NOT NULL,
`dept_name` varchar(40) NOT NULL,
PRIMARY KEY (`dept_no`));
CREATE TABLE `dept_emp` (
`emp_no` int(11) NOT NULL,
`dept_no` char(4) NOT NULL,
`from_date` date NOT NULL,
`to_date` date NOT NULL,
PRIMARY KEY (`emp_no`,`dept_no`));
CREATE TABLE `employees` (
`emp_no` int(11) NOT NULL,
`birth_date` date NOT NULL,
`first_name` varchar(14) NOT NULL,
`last_name` varchar(16) NOT NULL,
`gender` char(1) NOT NULL,
`hire_date` date NOT NULL,
PRIMARY KEY (`emp_no`));
INSERT INTO departments VALUES('d001','Marketing');
INSERT INTO departments VALUES('d002','Finance');
INSERT INTO departments VALUES('d003','Human Resources');
INSERT INTO dept_emp VALUES(10001,'d001','1986-06-26','9999-01-01');
INSERT INTO dept_emp VALUES(10002,'d001','1996-08-03','9999-01-01');
INSERT INTO dept_emp VALUES(10003,'d002','1990-08-05','9999-01-01');
INSERT INTO employees VALUES(10001,'1953-09-02','Georgi','Facello','M','1986-06-26');
INSERT INTO employees VALUES(10002,'1964-06-02','Bezalel','Simmel','F','1985-11-21');
INSERT INTO employees VALUES(10003,'1959-12-03','Parto','Bamford','M','1986-08-28');
INSERT INTO employees VALUES(10004,'1954-05-01','Chirstian','Koblick','M','1986-12-01');
复制输出：Facello|Georgi|Marketing
Simmel|Bezalel|Marketing
Bamford|Parto|Finance
Koblick|Chirstian|None

3.2 思路：

两个left join即可。

3.3 题解：

select last_name, first_name, dept_name
from employees t1
left join dept_emp t2
on t1.emp_no = t2.emp_no
left join departments t3
on t2.dept_no = t3.dept_no

4. 牛客SQL热题212：获取当前薪水第二多的员工的emp_no以及其对应的薪水salary

4.1 题目：

描述

有一个员工表employees简况如下:

emp_no	birth_date	first_name	last_name	gender	hire_date
10001	1953-09-02	Georgi	Facello	M	1986-06-26
10002	1964-06-02	Bezalel	Simmel	F	1985-11-21
10003	1959-12-03	Parto	Bamford	M	1986-08-28
10004	1954-05-01	Chirstian	Koblick	M	1986-12-01

有一个薪水表salaries简况如下:

emp_no	salary	from_date	to_date
10001	88958	2002-06-26	9999-01-01
10002	72527	2001-08-02	9999-01-01
10003	43311	2001-12-01	9999-01-01
10004	74057	2001-11-27	9999-01-01

请你查找薪水排名第二多的员工编号emp_no、薪水salary、last_name以及first_name，不能使用order by完成，以上例子输出为:

（温馨提示:sqlite通过的代码不一定能通过mysql，因为SQL语法规定，使用聚合函数时，select子句中一般只能存在以下三种元素：常数、聚合函数，group by 指定的列名。如果使用非group by的列名，sqlite的结果和mysql 可能不一样)

emp_no	salary	last_name	first_name
10004	74057	Koblick	Chirstian

示例1

输入：drop table if exists  `employees` ; 
drop table if exists  `salaries` ; 
CREATE TABLE `employees` (
`emp_no` int(11) NOT NULL,
`birth_date` date NOT NULL,
`first_name` varchar(14) NOT NULL,
`last_name` varchar(16) NOT NULL,
`gender` char(1) NOT NULL,
`hire_date` date NOT NULL,
PRIMARY KEY (`emp_no`));
CREATE TABLE `salaries` (
`emp_no` int(11) NOT NULL,
`salary` int(11) NOT NULL,
`from_date` date NOT NULL,
`to_date` date NOT NULL,
PRIMARY KEY (`emp_no`,`from_date`));
INSERT INTO employees VALUES(10001,'1953-09-02','Georgi','Facello','M','1986-06-26');
INSERT INTO employees VALUES(10002,'1964-06-02','Bezalel','Simmel','F','1985-11-21');
INSERT INTO employees VALUES(10003,'1959-12-03','Parto','Bamford','M','1986-08-28');
INSERT INTO employees VALUES(10004,'1954-05-01','Chirstian','Koblick','M','1986-12-01');
INSERT INTO salaries VALUES(10001,88958,'2002-06-22','9999-01-01');
INSERT INTO salaries VALUES(10002,72527,'2001-08-02','9999-01-01');
INSERT INTO salaries VALUES(10003,43311,'2001-12-01','9999-01-01');
INSERT INTO salaries VALUES(10004,74057,'2001-11-27','9999-01-01');
复制输出：10004|74057|Koblick|Chirstian

4.2 思路：

嵌套子查询。题目不让使用窗口函数。

4.3 题解：

select t1.emp_no, salary, last_name, first_name
from employees t1 
join salaries t2
on t1.emp_no = t2.emp_no 
where salary = (select max(salary)from salarieswhere salary <> (select max(salary)from salaries)
)

5. 牛客SQL热题219：获取员工其当前的薪水比其manager当前薪水还高的相关信息

5.1 题目：

描述

有一个，部门关系表dept_emp简况如下:

emp_no	dept_no	from_date	to_date
10001	d001	1986-06-26	9999-01-01
10002	d001	1996-08-03	9999-01-01

有一个部门经理表dept_manager简况如下:

dept_no	emp_no	from_date	to_date
d001	10002	1996-08-03	9999-01-01

有一个薪水表salaries简况如下:

emp_no	salary	from_date	to_date
10001	88958	2002-06-22	9999-01-01
10002	72527	1996-08-03	9999-01-01

获取员工其当前的薪水比其manager当前薪水还高的相关信息，

第一列给出员工的emp_no，
第二列给出其manager的manager_no，
第三列给出该员工当前的薪水emp_salary,
第四列给该员工对应的manager当前的薪水manager_salary

以上例子输出如下:

emp_no	manager_no	emp_salary	manager_salary
10001	10002	88958	72527

示例1

输入：drop table if exists  `dept_emp` ; 
drop table if exists  `dept_manager` ; 
drop table if exists  `salaries` ; 
CREATE TABLE `dept_emp` (
`emp_no` int(11) NOT NULL,
`dept_no` char(4) NOT NULL,
`from_date` date NOT NULL,
`to_date` date NOT NULL,
PRIMARY KEY (`emp_no`,`dept_no`));
CREATE TABLE `dept_manager` (
`dept_no` char(4) NOT NULL,
`emp_no` int(11) NOT NULL,
`from_date` date NOT NULL,
`to_date` date NOT NULL,
PRIMARY KEY (`emp_no`,`dept_no`));
CREATE TABLE `salaries` (
`emp_no` int(11) NOT NULL,
`salary` int(11) NOT NULL,
`from_date` date NOT NULL,
`to_date` date NOT NULL,
PRIMARY KEY (`emp_no`,`from_date`));
INSERT INTO dept_emp VALUES(10001,'d001','1986-06-26','9999-01-01');
INSERT INTO dept_emp VALUES(10002,'d001','1996-08-03','9999-01-01');
INSERT INTO dept_manager VALUES('d001',10002,'1996-08-03','9999-01-01');
INSERT INTO salaries VALUES(10001,88958,'2002-06-22','9999-01-01');
INSERT INTO salaries VALUES(10002,72527,'1996-08-03','9999-01-01');
复制输出：10001|10002|88958|72527

5.2 思路：

找到员工表和管理者的薪水，join比较即可。

5.3 题解：

with tep1 as (-- 先找到部门的每个人的薪水select t1.emp_no, dept_no , salary emp_salaryfrom dept_emp t1join salaries t2on t1.emp_no = t2.emp_no 
), tep2 as (-- 再找到所有管理者的薪水select t1.emp_no manager_no, dept_no , salary manager_salaryfrom dept_manager t1join salaries t2on t1.emp_no = t2.emp_no 
)
-- join，将员工的薪资和经理的薪资比较
-- 员工表里其实也包含了经理。
select emp_no, manager_no, emp_salary, manager_salary
from tep1 t1
join tep2 t2
on t1.dept_no = t2.dept_no
where t1.emp_salary > t2.manager_salary