1-请详细描述将一个有结构的文本文件student.txt导入到一个hive表中的步骤,及其关键字
- 假设student.txt 有以下几列:id,name,gender三列
- 1-创建数据库 create database student_info;
- 2-创建hive表 student
create external table student_info.student(
id string comment '学生id',
name string comment '学生姓名',
gender string comment '学生性别'
) comment "学生信息表"
row format delimited fields terminated by ' '
line terminated by '
'
stored as textfile
location "/user/root/student";
- 3-加载数据
load data local inpath '/root/student.txt' into table student_info.student location "/user/root/student" ;
- 4- 进入hive-cli,查看相应的表结构
select * from student_info.student limit 10;
划重点:要回手写代码
2-利用HQL实现以下功能
2-1-创建表
-
创建员工基本信息表(EmployeeInfo),字段包括(员工 ID,员工姓名,员工身份证号,性别,年龄,所属部门,岗位,入职公司时间,离职公司时间),分区字段为入职公司时间,其行分隔符为” “,字段分隔符为” “。其中所属部门包括行政部、财务部、研发部、教学部,其对应岗位包括行政经理、行政专员、财务经理、财务专员、研发工程师、测试工程师、实施工程师、讲师、助教、班主任等,时间类型值如:2018-05-10 11:00:00
-
创建员工收入表(IncomeInfo),字段包括(员工 ID,员工姓名,收入金额,收入所属
月份,收入类型,收入薪水的时间),分区字段为发放薪水的时间,其中收入类型包括薪资、奖金、公司福利、罚款四种情况 ; 时间类型值如:2018-05-10 11:00:00。
注意:时间类型是2018-05-10 11:00:00,需要对字段进行处理
- 创建员工基本信息表
create external table test.employee_info(
id string comment '员工id',
name string comment '员工姓名',
indentity_card string comment '身份证号',
gender string comment '性别',
department string comment '所属部门',
post string comment '岗位',
hire_date string comment '入职时间',
departure_date string comment '离职时间'
) comment "员工基本信息表"
partitioned by (day string comment "员工入职时间")
row format delimited fields terminated by ' '
lines terminated by '
'
stored as textfile
location '/user/root/employee';
- 创建员工收入表
create external table test.income_info(
id string comment '员工id',
name string comment '员工姓名',
income_data string comment '收入',
income_month string comment '收入所属月份',
income_type string comment '收入类型',
income_datetime string comment '收入薪水时间'
) comment '员工收入表'
partitioned by (day string comment "员工发放薪水时间")
row format delimited fields terminated by ' '
lines terminated by '
'
stored as textfile
location '/user/root/income';
2-2用 HQL 实现,求公司每年的员工费用总支出各是多少,并按年份降序排列?
- 重点对时间类型 2018-05-10 11:00:00 进行内置函数处理
- 需要读取income_info全量表,按照分区时间进行聚合,因为收入类型里面有罚款一项,所以需要在员工发放的钱中扣除罚款的钱。
- 不采用join、对数据一次遍历输出结果,
- 对于大数据量的情况下,要考虑对数据进行一次遍历求出结果
select
income_year,(income_data-(nvl(penalty_data,0))) as company_cost
from
(
-- 统计员工收入金额和罚款金额,输出 2019 500 10
select
income_year,
sum(case when income_type!='罚款' then data_total else 0 end) as income_data,
sum(case when income_type='罚款' then data_total else 0 end) as penalty_data
from
(
-- 按照年份、收入类型求收入金额
select
year(to_date(income_datetime)) as income_year,
income_type,
sum(income_data) as data_total
from
test.income_info
group by
year(to_date(income_datetime)) ,income_type
) tmp_a
group by tmp_a.income_year
) as temp
order by income_year desc;
2-3用 HQL 实现,求各部门每年的员工费用总支出各是多少,并按年份降序,按部门的支出升序排列?
- 保证对数据的一次遍历
--根据id关联得出department,和消费类型
select
income_year,department,
(sum(case when income_type!='罚款' then income_data else 0 end) - sum(case when income_type='罚款' then income_data else 0 end) ) as department_cost
from
(
-- 先对员工进行薪资类别的聚合统计
select
id,year(to_date(income_datetime)) as income_year,income_type,sum(income_data) as income_data
from
test.income_info
group by
year(to_date(income_datetime)),id,income_type
) temp_a
inner join
test.employee_info b
on
temp_a.id=b.id
group by
department,income_year
order by income_year desc , department_cost asc;
2-4用 HQL 实现,求各部门历史所有员工费用总支出各是多少,按总支出多少排名降序,遇到值相等情况,不留空位。
- 根据2-3中的中间结果进行修改
- 注意历史上所有的数据
select department,department_cost,dense_rank() over(order by department_cost desc) as cost_rank
from
(
--根据id关联得出department,和消费类型
select
department,
(sum(case when income_type!='罚款' then income_data else 0 end) - sum(case when income_type='罚款' then income_data else 0 end) ) as department_cost
from
(
-- 先对员工进行薪资类别的聚合统计
select
id,income_type,sum(income_data) as income_data
from
test.income_info
group by
id,income_type
) temp_a
inner join
test.employee_info b
on
temp_a.id=b.id
group by
department
) tmp_c ;
2-5 用 HQL 实现,创建并生成员工薪资收入动态变化表,即员工 ID,员工姓名,员工本月薪资,本月薪资发放时间,员工上月薪资,上月薪资发放时间。分区字段为本月薪资发放时间。
- 感觉应该使用动态分区插入的特性?-但是不知道该怎么写
- 先创建表,再采用insert into table **** select ***
- 要考虑到离职和入职的员工,这一点需要考虑到,full join
- 两张表进行full join,过滤day is null
- 需要concat year month to_date内置函数处理
- 这个题需要考虑的比较多
create external table test.income_dynamic(
id string comment '员工id',
name string comment '员工姓名',
income_data_current string comment '本月收入',
income_datetime_current string comment 本月'收入薪水时间',
income_data_last string comment '上月收入',
income_datetime_last string comment '上月收入薪水时间',
) comment '员工收入动态表'
partitioned by (day string comment "员工本月发放薪水时间")
row format delimited fields terminated by ' '
lines terminated by '
'
stored as textfile
location '/user/root/income';
-- ------------------------------------------------------------------------------
-- 动态分区插入
-- 插入语句
-- 采用full join
insert into table test.income_dynamic partition(day)
select
(case when id_a is not null then id_a else id_b end ) as id,
(case when name_a is not null then name_a else name_b end ) as name ,
income_data,income_datetime,income_data_b,income_datetime_b,day
from
(
-- 选出表中所有的数据
select
id as id_a,name as name_a,income_data,income_datetime,day,concat(year(to_date(day)),month(to_date(day))) as day_flag
from
test.income_info
where
income_type='薪资' ) tmp_a
full outer join
(
-- 将表中的收到薪水的日期整体加一个月
select
id as id_b,name as name_b,income_data as income_data_b,income_datetime as income_datetime_b,concat(year(add_months(to_date(day),1)),month(add_months(to_date(day),1))) as month_flag
from
test.income_info
where
income_type='薪资'
) tmp_b
on
tmp_a.day_flag=tmp_b.month_flag
and
tmp_a.id_a=tmp_b.id_b
where day is not null
;
2-6 用 HQL 实现,薪资涨幅方面,2018 年 5 月份谁的工资涨的最多,谁的涨幅最大?
- 再2-5的基础上做比较简单,仅仅利用select部分即可;或者是再2-5的基础上做就行
Hive行列转换
1、问题
hive如何将
a b 1
a b 2
a b 3
c d 4
c d 5
c d 6
变为:
a b 1,2,3
c d 4,5,6
-------------------------------------------------------------------------------------------
2、数据
test.txt
a b 1
a b 2
a b 3
c d 4
c d 5
c d 6
-------------------------------------------------------------------------------------------
3、答案
1.建表
drop table tmp_jiangzl_test;
create table tmp_jiangzl_test
(
col1 string,
col2 string,
col3 string
)
row format delimited fields terminated by ' '
stored as textfile;
-- 加载数据
load data local inpath '/home/jiangzl/shell/test.txt' into table tmp_jiangzl_test;
2.处理
select col1,col2,concat_ws(',',collect_set(col3))
from tmp_jiangzl_test
group by col1,col2;
---------------------------------------------------------------------------------------
collect_set/concat_ws语法参考链接:https://blog.csdn.net/waiwai3/article/details/79071544
https://blog.csdn.net/yeweiouyang/article/details/41286469 [Hive]用concat_w实现将多行记录合并成一行
---------------------------------------------------------------------------------------
二、列转行
1、问题
hive如何将
a b 1,2,3
c d 4,5,6
变为:
a b 1
a b 2
a b 3
c d 4
c d 5
c d 6
---------------------------------------------------------------------------------------------
2、答案
1.建表
drop table tmp_jiangzl_test;
create table tmp_jiangzl_test
(
col1 string,
col2 string,
col3 string
)
row format delimited fields terminated by ' '
stored as textfile;
处理:
select col1, col2, col5
from tmp_jiangzl_test a
lateral view explode(split(col3,',')) b AS col5;
---------------------------------------------------------------------------------------
lateral view 语法参考链接:
https://blog.csdn.net/clerk0324/article/details/58600284
Hive实现wordcount
1.创建数据库
create database wordcount;
2.创建外部表
create external table word_data(line string) row format delimited fields terminated by ',' location '/home/hadoop/worddata';
3.映射数据表
load data inpath '/home/hadoop/worddata' into table word_data;
4.这里假设我们的数据存放在hadoop下,路径为:/home/hadoop/worddata,里面主要是一些单词文件,内容大概为:
hello man
what are you doing now
my running
hello
kevin
hi man
执行了上述hql就会创建一张表src_wordcount,内容是这些文件的每行数据,每行数据存在字段line中,select * from word_data;就可以看到这些数据
5.根据MapReduce的规则,我们需要进行拆分,把每行数据拆分成单词,这里需要用到一个hive的内置表生成函数(UDTF):explode(array),参数是array,其实就是行变多列:
create table words(word string);
insert into table words select explode(split(line, " ")) as word from word_data;
6.查看words表内容
OK
hello
man
what
are
you
doing
now
my
running
hello
kevin
hi
man
split是拆分函数,跟java的split功能一样,这里是按照空格拆分,所以执行完hql语句,words表里面就全部保存的单个单词
7.group by统计单词
select word, count(*) from wordcount.words group by word;
wordcount.words 库名称.表名称,group by word这个word是create table words(word string) 命令创建的word string
结果:
are 1
doing 1
hello 2
hi 1
kevin 1
man 2
my 1
now 1
running 1
what 1
you 1
Hive取TopN
- rank() over()
- dense_rank() over()
- row_number() over()
求取指定状态下的订单id
- 给一张订单表,统计只购买过面粉的用户;(重点在于仅仅购买过面粉的客户)
eg:order:order_id,buyer_id,order_time.....
在保证一次遍历的情况下,重点是O(1)复杂度
select buyer_id
from
(
select buyer_id,sum(case when order_id='面粉' then 0 else 1 end) as flag
from order
) as tmp
where flag=0;
微博体系中互粉的有多少组
- 在微博粉丝表中,互相关注的人有多少组,例如:A-->B;B-->A;A和B互粉,称为一组。
表结构:id,keep_id,time.... (id,keep_id可作为联合主键) - 借助Hive进行实现
select count(*)/2 as weibo_relation_number
from
(
(select concat(id,keep_id) as flag from weibo_relation)
union all --全部合并到一起,不能提前去重
(select concat(keep_id,id) as flag from weibo_relation)
) as tmp
having count(flag) =2
group by flag;
购买了香蕉的人买了多少东西
- 这个是一个很经典的问题,购买了香蕉的人买了多少东西
- 数据还是延用上一个问题的数据和表结构,即理解为关注C的人总共关注了多少人
- 仔细理解是需要对关注的人进行去重统计
select count(distinct keep_id) as total_keep_id
from weibo_relation
where id
in
(select id from weibo_relation where keep_id='c')