数据集三个
student.txt
95001,李勇,男,20,CS
95002,刘晨,女,19,IS
95003,王敏,女,22,MA
95004,张立,男,19,IS
95005,刘刚,男,18,MA
95006,孙庆,男,23,CS
95007,易思玲,女,19,MA
95008,李娜,女,18,CS
95009,梦圆圆,女,18,MA
95010,孔小涛,男,19,CS
95011,包小柏,男,18,MA
95012,孙花,女,20,CS
95013,冯伟,男,21,CS
95014,王小丽,女,19,CS
95015,王君,男,18,MA
95016,钱国,男,21,MA
95017,王风娟,女,18,IS
95018,王一,女,19,IS
95019,邢小丽,女,19,IS
95020,赵钱,男,21,IS
95021,周二,男,17,MA
95022,郑明,男,20,MA
src.txt
95001,1,81course.txt
95001,2,85
95001,3,88
95001,4,70
95002,2,90
95002,3,80
95002,4,71
95002,5,60
95003,1,82
95003,3,90
95003,5,100
95004,1,80
95004,2,92
95004,4,91
95004,5,70
95005,1,70
95005,2,92
95005,3,99
95005,6,87
95006,1,72
95006,2,62
95006,3,100
95006,4,59
95006,5,60
95006,6,98
95007,3,68
95007,4,91
95007,5,94
95007,6,78
95008,1,98
95008,3,89
95008,6,91
95009,2,81
95009,4,89
95009,6,100
95010,2,98
95010,5,90
95010,6,80
95011,1,81
95011,2,91
95011,3,81
95011,4,86
95012,1,81
95012,3,78
95012,4,85
95012,6,98
95013,1,98
95013,2,58
95013,4,88
95013,5,93
95014,1,91
95014,2,100
95014,4,98
95015,1,91
95015,3,59
95015,4,100
95015,6,95
95016,1,92
95016,2,99
95016,4,82
95017,4,82
95017,5,100
95017,6,58
95018,1,95
95018,2,100
95018,3,67
95018,4,78
95019,1,77
95019,2,90
95019,3,91
95019,4,67
95019,5,87
95020,1,66
95020,2,99
95020,5,93
95021,2,93
95021,5,91
95021,6,99
95022,3,69
95022,4,93
95022,5,82
95022,6,100
1,数据库
2,数学
3,信息系统
4,操作系统
5,数据结构
6,数据处理
操作如下
查询全体学生的学号与姓名
hive> select Sno,Sname from student;
查询选修了课程的学生姓名
hive> select distinct Sname from student inner join sc on student.Sno=Sc.Sno;
----hive的group by 和集合函数
查询学生的总人数
hive> select count(distinct Sno)count from student;.
计算1号课程的学生平均成绩
hive> select avg(distinct Grade) from sc where Cno=1;
查询各科成绩平均分
hive> select Cno,avg(Grade) from sc group by Cno;
查询选修1号课程的学生最高分数
select Grade from sc where Cno=1 sort by Grade desc limit 1;
(注意比较:select * from sc where Cno=1 sort by Grade
select Grade from sc where Cno=1 order by Grade)
求各个课程号及相应的选课人数
hive> select Cno,count(1) from sc group by Cno;
查询选修了3门以上的课程的学生学号
hive> select Sno from (select Sno,count(Cno) CountCno from sc group by Sno)a where a.CountCno>3;
或 hive> select Sno from sc group by Sno having count(Cno)>3;
----hive的Order By/Sort By/Distribute By
Order By ,在strict 模式下(hive.mapred.mode=strict),order by 语句必须跟着limit语句,但是在nonstrict下就不是必须的,这样做的理由是必须有一个reduce对最终的结果进行排序,如果最后输出的行数过多,一个reduce需要花费很长的时间。
查询学生信息,结果按学号全局有序
hive> set hive.mapred.mode=strict; <默认nonstrict>
hive> select Sno from student order by Sno;
FAILED: Error in semantic analysis: 1:33 In strict mode, if ORDER BY is specified, LIMIT must also be specified. Error encountered near token 'Sno'
Sort By,它通常发生在每一个redcue里,“order by” 和“sort by"的区别在于,前者能给保证输出都是有顺序的,而后者如果有多个reduce的时候只是保证了输出的部分有序。set mapred.reduce.tasks=<number>在sort by可以指定,在用sort by的时候,如果没有指定列,它会随机的分配到不同的reduce里去。distribute by 按照指定的字段对数据进行划分到不同的输出reduce中
此方法会根据性别划分到不同的reduce中 ,然后按年龄排序并输出到不同的文件中。
查询学生信息,按性别分区,在分区内按年龄有序
hive> set mapred.reduce.tasks=2;
hive> insert overwrite local directory '/home/hadoop/out'
select * from student distribute by Sex sort by Sage;
----Join查询,join只支持等值连接
查询每个学生及其选修课程的情况
hive> select student.*,sc.* from student join sc on (student.Sno =sc.Sno);
查询学生的得分情况。
hive>select student.Sname,course.Cname,sc.Grade from student join sc on student.Sno=sc.Sno join course on sc.cno=course.cno;
查询选修2号课程且成绩在90分以上的所有学生。
hive> select student.Sname,sc.Grade from student join sc on student.Sno=sc.Sno
where sc.Cno=2 and sc.Grade>90;
----LEFT,RIGHT 和 FULL OUTER JOIN ,inner join, left semi join
查询所有学生的信息,如果在成绩表中有成绩,则输出成绩表中的课程号
hive> select student.Sname,sc.Cno from student left outer join sc on student.Sno=sc.Sno;
如果student的sno值对应的sc在中没有值,则会输出student.Sname null.如果用right out join会保留右边的值,左边的为null。
Join 发生在WHERE 子句之前。如果你想限制 join 的输出,应该在 WHERE 子句中写过滤条件——或是在join 子句中写。
----LEFT SEMI JOIN Hive 当前没有实现 IN/EXISTS 子查询,可以用 LEFT SEMI JOIN 重写子查询语句
重写以下子查询为LEFT SEMI JOIN
SELECT a.key, a.value
FROM a
WHERE a.key exist in
(SELECT b.key
FROM B);
可以被重写为:
SELECT a.key, a.val
FROM a LEFT SEMI JOIN b on (a.key = b.key)
查询与“刘晨”在同一个系学习的学生
hive> select s1.Sname from student s1 left semi join student s2 on s1.Sdept=s2.Sdept and s2.Sname='刘晨';
注意比较:
select * from student s1 left join student s2 on s1.Sdept=s2.Sdept and s2.Sname='刘晨';
select * from student s1 right join student s2 on s1.Sdept=s2.Sdept and s2.Sname='刘晨';
select * from student s1 inner join student s2 on s1.Sdept=s2.Sdept and s2.Sname='刘晨';
select * from student s1 left semi join student s2 on s1.Sdept=s2.Sdept and s2.Sname='刘晨';
select s1.Sname from student s1 right semi join student s2 on s1.Sdept=s2.Sdept and s2.Sname='刘晨';