CREATE TABLE table1 ( uid VARCHAR(10) NOT NULL, name VARCHAR(10) NOT NULL, PRIMARY KEY(uid) )ENGINE=INNODB DEFAULT CHARSET=UTF8;
CREATE TABLE table2 ( oid INT NOT NULL auto_increment, uid VARCHAR(10), PRIMARY KEY(oid) )ENGINE=INNODB DEFAULT CHARSET=UTF8;
3.插入数据
INSERT INTO table1(uid,name) VALUES('aaa','mike'),('bbb','jack'),('ccc','mike'),('ddd','mike');
INSERT INTO table2(uid) VALUES('aaa'),('aaa'),('bbb'),('bbb'),('bbb'),('ccc'),(NULL);
4.最后想要的结果
SELECT a.uid, count(b.oid) AS total FROM table1 AS a LEFT JOIN table2 AS b ON a.uid = b.uid WHERE a. NAME = 'mike' GROUP BY a.uid HAVING count(b.oid) ORDER BY total DESC LIMIT 1;
!现在开始SQL解析之旅吧!
1. FROM
当涉及多个表的时候,左边表的输出会作为右边表的输入,之后会生成一个虚拟表VT1。
(1-J1)笛卡尔积
计算两个相关联表的笛卡尔积(CROSS JOIN) ,生成虚拟表VT1-J1。
mysql> select * from table1,table2; +-----+------+-----+------+ | uid | name | oid | uid | +-----+------+-----+------+ | aaa | mike | 1 | aaa | | bbb | jack | 1 | aaa | | ccc | mike | 1 | aaa | | ddd | mike | 1 | aaa | | aaa | mike | 2 | aaa | | bbb | jack | 2 | aaa | | ccc | mike | 2 | aaa | | ddd | mike | 2 | aaa | | aaa | mike | 3 | bbb | | bbb | jack | 3 | bbb | | ccc | mike | 3 | bbb | | ddd | mike | 3 | bbb | | aaa | mike | 4 | bbb | | bbb | jack | 4 | bbb | | ccc | mike | 4 | bbb | | ddd | mike | 4 | bbb | | aaa | mike | 5 | bbb | | bbb | jack | 5 | bbb | | ccc | mike | 5 | bbb | | ddd | mike | 5 | bbb | | aaa | mike | 6 | ccc | | bbb | jack | 6 | ccc | | ccc | mike | 6 | ccc | | ddd | mike | 6 | ccc | | aaa | mike | 7 | NULL | | bbb | jack | 7 | NULL | | ccc | mike | 7 | NULL | | ddd | mike | 7 | NULL | +-----+------+-----+------+ 28 rows inset (0.00 sec)
mysql> SELECT -> * -> FROM -> table1 AS a -> LEFT OUTER JOIN table2 AS b ON a.uid = b.uid -> WHERE -> a. NAME = 'mike' -> GROUP BY -> a.uid; +-----+------+------+------+ | uid | name | oid | uid | +-----+------+------+------+ | aaa | mike | 1 | aaa | | ccc | mike | 6 | ccc | | ddd | mike | NULL | NULL | +-----+------+------+------+ 3 rows inset (0.00 sec)
mysql> SELECT -> * -> FROM -> table1 AS a -> LEFT OUTER JOIN table2 AS b ON a.uid = b.uid -> WHERE -> a. NAME = 'mike' -> GROUP BY -> a.uid -> HAVING -> count(b.oid) +-----+------+------+------+ | uid | name | oid | uid | +-----+------+------+------+ | ccc | mike | 6 | ccc | | ddd | mike | NULL | NULL | +-----+------+------+------+ 2 rows inset (0.00 sec)
mysql> SELECT -> a.uid, -> count(b.oid) AS total -> FROM -> table1 AS a -> LEFT OUTER JOIN table2 AS b ON a.uid = b.uid -> WHERE -> a. NAME = 'mike' -> GROUP BY -> a.uid -> HAVING -> count(b.oid) +-----+-------+ | uid | total | +-----+-------+ | ccc | 1 | | ddd | 0 | +-----+-------+ 2 rows inset (0.00 sec)
6.ORDER BY
从VT5-J2中的表中,根据ORDER BY 子句的条件对结果进行排序,生成VT6表。
注意:
唯一可使用SELECT中别名的地方;
mysql> SELECT -> a.uid, -> count(b.oid) AS total -> FROM -> table1 AS a -> LEFT OUTER JOIN table2 AS b ON a.uid = b.uid -> WHERE -> a. NAME = 'mike' -> GROUP BY -> a.uid -> HAVING -> count(b.oid) -> ORDER BY -> total DESC; +-----+-------+ | uid | total | +-----+-------+ | ccc | 1 | | ddd | 0 | +-----+-------+ 2 rows inset (0.00 sec)
7.LIMIT
LIMIT子句从上一步得到的VT6虚拟表中选出从指定位置开始的指定行数据。
注意:
offset和rows的正负带来的影响;
当偏移量很大时效率是很低的,可以这么做:
采用子查询的方式优化,在子查询里先从索引获取到最大id,然后倒序排,再取N行结果集
采用INNER JOIN优化,JOIN子句里也优先从索引获取ID列表,然后直接关联查询获得最终结果
mysql> SELECT -> a.uid, -> count(b.oid) AS total -> FROM -> table1 AS a -> LEFT JOIN table2 AS b ON a.uid = b.uid -> WHERE -> a. NAME = 'mike' -> GROUP BY -> a.uid -> HAVING -> count(b.oid) -> ORDER BY -> total DESC -> LIMIT 1; +-----+-------+ | uid | total | +-----+-------+ | ccc | 1 | +-----+-------+ 1 row inset (0.00 sec)