【牛客】SQL142 对试卷得分做min-max归一化

描述

现有试卷信息表examination_info(exam_id试卷ID, tag试卷类别, difficulty试卷难度, duration考试时长, release_time发布时间):

id exam_id tag difficulty duration release_time
1 9001 SQL hard 60 2020-01-01 10:00:00
2 9002 C++ hard 80 2020-01-01 10:00:00
3 9003 算法 hard 80 2020-01-01 10:00:00
4 9004 PYTHON medium 70 2020-01-01 10:00:00

试卷作答记录表exam_record(uid用户ID, exam_id试卷ID, start_time开始作答时间, submit_time交卷时间, score得分):

id uid exam_id start_time submit_time score
6 1003 9001 2020-01-02 12:01:01 2020-01-02 12:31:01 68
9 1001 9001 2020-01-02 10:01:01 2020-01-02 10:31:01 89
1 1001 9001 2020-01-01 09:01:01 2020-01-01 09:21:59 90
12 1002 9002 2021-05-05 18:01:01 (NULL) (NULL)
3 1004 9002 2020-01-01 12:01:01 2020-01-01 12:11:01 60
2 1003 9002 2020-01-01 19:01:01 2020-01-01 19:30:01 75
7 1001 9002 2020-01-02 12:01:01 2020-01-02 12:43:01 81
10 1002 9002 2020-01-01 12:11:01 2020-01-01 12:31:01 83
4 1003 9002 2020-01-01 12:01:01 2020-01-01 12:41:01 90
5 1002 9002 2020-01-02 19:01:01 2020-01-02 19:32:00 90
11 1002 9004 2021-09-06 12:01:01 (NULL) (NULL)
8 1001 9005 2020-01-02 12:11:01 (NULL) (NULL)
在物理学及统计学数据计算时,有个概念叫min-max标准化,也被称为离差标准化,是对原始数据的线性变换,使结果值映射到[0 - 1]之间。转换函数为:

请你将用户作答高难度试卷的得分在每份试卷作答记录内执行min-max归一化后缩放到[0,100]区间,并输出用户ID、试卷ID、归一化后分数平均值;最后按照试卷ID升序、归一化分数降序输出。(注:得分区间默认为[0,100],如果某个试卷作答记录中只有一个得分,那么无需使用公式,归一化并缩放后分数仍为原分数)。

由示例数据结果输出如下:

uid exam_id avg_new_score
1001 9001 98
1003 9001 0
1002 9002 88
1003 9002 75
1001 9002 70
1004 9002 0

解释:高难度试卷有9001、9002、9003;

作答了9001的记录有3条,分数分别为68、89、90,按给定公式归一化后分数为:0、95、100,而后两个得分都是用户1001作答的,因此用户1001对试卷9001的新得分为(95+100)/2≈98(只保留整数部分),用户1003对于试卷9001的新得分为0。最后结果按照试卷ID升序、归一化分数降序输出。

方法一:使用group by聚合函数

#使用group by聚合函数
select
uid,exam_id,ifnull(round(avg((score-min_score)/differ_score)*100,0),min(score)) as avg_new_score
from
(
    select
    exam_id,min(score) as min_score,max(score)-min(score) as differ_score
    from
    exam_record
    where submit_time is not null and
    exam_id in (select exam_id from examination_info where difficulty='hard')
    group by exam_id
)t1
left join
(
    select uid,exam_id,score
    from
    exam_record
    where submit_time is not null and
    exam_id in (select exam_id from examination_info where difficulty='hard')
)t2
using(exam_id)
group by uid,exam_id
order by exam_id,avg_new_score desc

方法二:使用窗口函数

# 使用窗口函数
select
uid,exam_id,
round(avg(if(max_score=min_score,score,(score-min_score)/(max_score-min_score)*100)),0) as avg_new_score
from
(
    select
    uid,exam_id,score,
    max(score) over(partition by exam_id) as max_score,
    min(score) over(partition by exam_id) as min_score
    from
    exam_record
    where submit_time is not null and
    exam_id in (select exam_id from examination_info where difficulty = 'hard')
)t1
group by uid,exam_id
order by exam_id,avg_new_score desc
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