快上网专注成都网站设计 成都网站制作 成都网站建设
成都网站建设公司服务热线:028-86922220

网站建设知识

十年网站开发经验 + 多家企业客户 + 靠谱的建站团队

量身定制 + 运营维护+专业推广+无忧售后,网站问题一站解决

SQL难点解决:特殊示例

这一节我们对 SQL 和集算器 SPL 在序列值查找、分栏、动态行、动态列、指定序排序等方面进行了对比。

成都一家集口碑和实力的网站建设服务商,拥有专业的企业建站团队和靠谱的建站技术,十载企业及个人网站建设经验 ,为成都1000多家客户提供网页设计制作,网站开发,企业网站制作建设等服务,包括成都营销型网站建设,成都品牌网站建设,同时也为不同行业的客户提供成都网站建设、网站设计的服务,包括成都电商型网站制作建设,装修行业网站制作建设,传统机械行业网站建设,传统农业行业网站制作建设。在成都做网站,选网站制作建设服务商就选创新互联建站

1、    列出中文人口和英文人口均达到 1% 的国家代码

MySQL8:

select countrycode from world.countrylanguage

where language in ('Chinese', 'English') and percentage>=1

group by countrycode

having count(*)>=2;

 

集算器SPL:


A
1=connect("mysql")
2=A1.query@x("select   * from world.countrylanguage where percentage>=1")
3=A2.group(CountryCode)
4=A3.select(~.(Language).contain("Chinese","English"))
5=A4.(CountryCode)

A4: 选取语言包含 Chinese 和 English 的组

SQL 难点解决:特殊示例

 

2、    从数据结构为 (id,v) 的表中,按 id 升序查找连续记录的 v 值分别为 23、7、11 时下一个记录的 v 值

MySQL8:

with t(id,v) as (select 1,3 union all select 2,15

union all select 3,23 union all select 4,7

union all select 5,11 union all select 6,19

union all select 7,23 union all select 8,7

union all select 9,6),

s(v) as (select '23,7,11'),

t1(v) as (select group_concat(v order by id) from t),

t2(p1,p2,p3,next) as (

select @p1:=locate(s.v,t1.v), @p2:=if(@p1>0,@p1+char_length(s.v)+1,null),

@p3:=locate(',',t1.v,@p2),@s:=substr(t1.v,@p2,@p3-@p2)

from s,t1)

select next from t2;

说明:利用串操作求下一个值,t中id为序号,v为值,s中v为待查的值串。

 

集算器SPL:


A
1=connect("mysql")
2=A1.query@x("with   t(id,v) as (select 1,3 union all select 2,15 union all select 3,23 union all   select 4,7 union all select 5,11 union all select 6,19 union all select 7,23   union all select 8,7 union all select 9,6) select * from t order by id")
3[23,7,11]
4=A2.(v)
5=A4.pos@c(A3)
6=if(A5>0,A4.m(A5+A3.len()))

A3: 待查值的序列

A5: 在A4中查找与A3成员连续相同的起始位置

SQL 难点解决:特殊示例

 

3、    在数据结构为 (id,used) 的表中,id 值连续,used 为 0 表示未用,为 1 时表示已用,请列出所有未用区间的起始和结束 id

MySQL:

with t(id,used) as (select 1,1 union all select 2,1

union all select 3,0 union all select 4,1

union all select 5,0 union all select 6,0

union all select 7,1 union all select 8,1

union all select 9,0 union all select 10,0

union all select 10,0 union all select 11,0),

first as (select a.id

from t a left join t b on a.id=b.id+1

where a.used=0 and (b.id is null or b.used=1)),

t2 as (select first.id firstUnused, min(c.id) minUsed, max(d.id) maxUnused

from first

left join t c on first.id

left join t d on first.id

group by firstUnused)

select firstUnused, if(minUsed is null, ifnull(maxUnused,firstUnused), minUsed-1) lastUnused

from t2;

说明:此SQL没有采用《SQL难点解决:直观分组》中用窗口函数将相邻的同值分到同组的思路,而是仅使用了普通的join和left join,first求所有未用区间的起始id列表,t2求每个起始id对应的比它大的最小已用id和比它大的最大未用id,请读者仔细体会。

 

集算器SPL:


A
1=connect("mysql")
2=A1.query@x("with   t(id,used) as (select 1,1 union all select 2,1 union all select 3,0 union all   select 4,1 union all select 5,0 union all select 6,0 union all select 7,1   union all select 8,1 union all select 9,0 union all select 10,0 union all   select 10,0 union all select 11,0) select * from t order by id")
3=create(firstUnused,lastUnused)
4>A2.run(if(used==0&&used!=used[-1],a=id),   if(used==0&&used!=used[1],A3.insert(0,a,id)))

A3:当 used 为 0 且和上一行 used 不等时当前行 id 即为起始 id,当 used 为 0 且和下一行 used 不等时则当前行 id 即为结束 id,并向 A3 中的插入

SQL 难点解决:特殊示例

 

4、    分栏列出欧洲和非洲人口超 200 万的城市名称及人口(每栏按从多到少排序)

MySQL:

with t as (select t1.name,t1.population,t2.continent,

rank()over(partition by t2.continent order by t1.population desc) rk

from world.city t1 join world.country t2 on t1.countrycode=t2.code

where t2.continent in ('Europe','Africa') and t1.population>=2000000

),

m(rk) as (select distinct rk from t)

select t1.name `Europe City`, t1.Population, t2.name `Africa City`, t2.Population

from m

left join (select * from t where continent='Europe') t1 using(rk)

left join (select * from t where continent='Africa') t2 using (rk);

 

集算器SPL:


A
1=connect("mysql")
2=A1.query@x("select   t1.name,t1.population,t2.continent from world.city t1 join world.country t2 on   t1.countrycode=t2.code where t2.continent in ('Europe','Africa') and   t1.population>=2000000 order by t1.population desc")
3=A2.select(continent:"Europe")
4=A2.select(continent:"Africa")
5=create('Europe   City',population,'Africa City', population)
6=A5.paste(A3.(name),A3.(population),A4.(name),A4.(population))

A6:将值序列直接粘贴到对应列

SQL 难点解决:特殊示例

 

5、    现有数据结构为 (Student,Math,Chinese,English,Physics, Chemistry,Information) 的成绩表,请列出 Maliang 低于 90 分的学科对应的所有学生的成绩

MySQL:

create temporary table

scores(Student varchar(20),Math int,Chinese int,English int,

Physics int,Chemistry int,Information int);

insert into scores

select 'Lili', 93,99,100,88,92,95

union all select 'Sunqiang', 100,99,97,100,85,96

union all select 'Zhangjun', 95,92,94,90,93,91

union all select 'Maliang', 97,89,92,99,98,88;

 

select @m:=concat(if(Math<90, 'Math,', ''),

if(Chinese<90, 'Chinese,', ''),

if(English<90, 'English,', ''),

if(Physics<90, 'Physics,', ''),

if(Chemistry<90, 'Chemistry,', ''),

if(Information<90, 'Information,', ''))

from scores

where student='Maliang';

 

set @s:=left(@m, length(@m)-1);

set @sql:=concat('select Student,', @s, 'from scores');

prepare stmt from @sql;

execute stmt;

deallocate prepare stmt;

drop table scores;

 

集算器SPL:


A
1=connect("mysql")
2=A1.query@x("with   t(Student,Math,Chinese,English,Physics, Chemistry,Information) as (select  'Lili', 93,99,100,88,92,95 union all select'Sunqiang', 100,99,97,100,85,96   union all select'Zhangjun', 95,92,94,90,93,91 union all select'Maliang',   97,89,92,99,98,88) select * from t")
3=A2.select@1(Student:"Maliang")
4=A3.array().pselect@a(#>1&&~<90)
5=A2.fname()(A4).concat@c()
6=A2.new(Student,${A5})

A4:将记录转成数组,并查找低于90分的学科所在列号

A5:从A2中取出相应位置的列名,并且逗号分隔连在一起

A6:根据A2构造学生和选出的列的新序表

SQL 难点解决:特殊示例

SQL 难点解决:特殊示例

 

6、    列出 2016 年 3 月各省市销售额,要求 Beijing、Shanghai、Guangdong 依次列在最前

MySQL:

select *

from detail

where yearmonth=201603

order by case when province='Beijing' then 1

when province='Shanghai' then 2

when province='Guangdong' then 3 else 4 end;

 

集算器SPL:


A
1=connect("mysql")
2=A1.query@x("select   * from detail where yearmonth=201603")
3=["Beijing","Shanghai","Guangdong"]
4=A2.align@s(A3,province)

A4: 将A2中记录的province按A3对齐,多余的按原序排在后面

SQL 难点解决:特殊示例

 

7、    列出不存在人口超过 1000 的城市的国家

MySQL:

select t1.code,t1.name

from world.country t1

left join (select * from world.city where population>=1000) t2

on t1.code=t2.countrycode

where t2.countrycode is null;

 

集算器SPL:


A
1=connect("mysql")
2=A1.query("select   code,name from world.country")
3=A1.query@xi("select   distinct countrycode from world.city where population>=1000")
4=A2.switch@d(code,A3:countrycode)

A4:选取A2中code不在A3里的记录

SQL 难点解决:特殊示例


分享名称:SQL难点解决:特殊示例
URL分享:http://6mz.cn/article/jcpcsi.html

其他资讯