最近由于需要大概研究了一下MYSQL的随机抽取实现方法。举个例子,要从tablename表中随机提取一条记录,大家一般的写法就是:SELECT * FROM tablename ORDER BY RAND() LIMIT 1。
但是,后来我查了一下MYSQL的官方手册,里面针对RAND()的提示大概意思就是,在ORDER BY从句里面不能使用RAND()函数,因为这样会导致数据列被多次扫描。但是在MYSQL 3.23版本中,仍然可以通过ORDER BY RAND()来实现随机。
但是真正测试一下才发现这样效率非常低。一个15万余条的库,查询5条数据,居然要8秒以上。查看官方手册,也说rand()放在ORDER BY 子句中会被执行多次,自然效率及很低。
You cannot use a column with RAND() values in an ORDER BY clause, because ORDER BY
would evaluate the column multiple times.
搜索Google,网上基本上都是查询max(id) * rand()来随机获取数据。
SELECT * <br>FROM `table` AS t1 JOIN (SELECT ROUND(RAND() * (SELECT MAX(id) FROM `table`)) AS id) AS t2 <br>WHERE t1.id >= t2.id <br>ORDER BY t1.id ASC LIMIT 5;
但是这样会产生连续的5条记录。解决办法只能是每次查询一条,查询5次。即便如此也值得,因为15万条的表,查询只需要0.01秒不到。
下面的语句采用的是JOIN,mysql的论坛上有人使用
SELECT * <br>FROM `table` <br>WHERE id >= (SELECT FLOOR( MAX(id) * RAND()) FROM `table` ) <br>ORDER BY id LIMIT 1;
我测试了一下,需要0.5秒,速度也不错,但是跟上面的语句还是有很大差距。总觉有什么地方不正常。
于是我把语句改写了一下。
SELECT * <br>FROM `table` <br>WHERE id >= (SELECT FLOOR( MAX(id) * RAND()) FROM `table` ) <br>ORDER BY id LIMIT 1;
这下,效率又提高了,查询时间只有0.01秒
最后,再把语句完善一下,加上MIN(id)的判断。我在最开始测试的时候,就是因为没有加上MIN(id)的判断,结果有一半的时间总是查询到表中的前面几行。完整查询语句是:
1 SELECT * FROM `table` <br>2 WHERE id >= (SELECT floor( RAND() * ((SELECT MAX(id) FROM `table`)-(SELECT MIN(id) FROM `table`)) + (SELECT MIN(id) FROM `table`)))<br>3 ORDER BY id LIMIT 1;
SELECT *
FROM `table` AS t1 JOIN (SELECT ROUND(RAND() * ((SELECT MAX(id) FROM `table`)-(SELECT MIN(id) FROM `table`))+(SELECT MIN(id) FROM `table`)) AS id) AS t2
WHERE t1.id >= t2.id
ORDER BY t1.id LIMIT 1;
最后在php中对这两个语句进行分别查询10次,
前者花费时间 0.147433 秒
后者花费时间 0.015130 秒
看来采用JOIN的语法比直接在WHERE中使用函数效率还要高很多。

MySQL index cardinality has a significant impact on query performance: 1. High cardinality index can more effectively narrow the data range and improve query efficiency; 2. Low cardinality index may lead to full table scanning and reduce query performance; 3. In joint index, high cardinality sequences should be placed in front to optimize query.

The MySQL learning path includes basic knowledge, core concepts, usage examples, and optimization techniques. 1) Understand basic concepts such as tables, rows, columns, and SQL queries. 2) Learn the definition, working principles and advantages of MySQL. 3) Master basic CRUD operations and advanced usage, such as indexes and stored procedures. 4) Familiar with common error debugging and performance optimization suggestions, such as rational use of indexes and optimization queries. Through these steps, you will have a full grasp of the use and optimization of MySQL.

MySQL's real-world applications include basic database design and complex query optimization. 1) Basic usage: used to store and manage user data, such as inserting, querying, updating and deleting user information. 2) Advanced usage: Handle complex business logic, such as order and inventory management of e-commerce platforms. 3) Performance optimization: Improve performance by rationally using indexes, partition tables and query caches.

SQL commands in MySQL can be divided into categories such as DDL, DML, DQL, DCL, etc., and are used to create, modify, delete databases and tables, insert, update, delete data, and perform complex query operations. 1. Basic usage includes CREATETABLE creation table, INSERTINTO insert data, and SELECT query data. 2. Advanced usage involves JOIN for table joins, subqueries and GROUPBY for data aggregation. 3. Common errors such as syntax errors, data type mismatch and permission problems can be debugged through syntax checking, data type conversion and permission management. 4. Performance optimization suggestions include using indexes, avoiding full table scanning, optimizing JOIN operations and using transactions to ensure data consistency.

InnoDB achieves atomicity through undolog, consistency and isolation through locking mechanism and MVCC, and persistence through redolog. 1) Atomicity: Use undolog to record the original data to ensure that the transaction can be rolled back. 2) Consistency: Ensure the data consistency through row-level locking and MVCC. 3) Isolation: Supports multiple isolation levels, and REPEATABLEREAD is used by default. 4) Persistence: Use redolog to record modifications to ensure that data is saved for a long time.

MySQL's position in databases and programming is very important. It is an open source relational database management system that is widely used in various application scenarios. 1) MySQL provides efficient data storage, organization and retrieval functions, supporting Web, mobile and enterprise-level systems. 2) It uses a client-server architecture, supports multiple storage engines and index optimization. 3) Basic usages include creating tables and inserting data, and advanced usages involve multi-table JOINs and complex queries. 4) Frequently asked questions such as SQL syntax errors and performance issues can be debugged through the EXPLAIN command and slow query log. 5) Performance optimization methods include rational use of indexes, optimized query and use of caches. Best practices include using transactions and PreparedStatemen

MySQL is suitable for small and large enterprises. 1) Small businesses can use MySQL for basic data management, such as storing customer information. 2) Large enterprises can use MySQL to process massive data and complex business logic to optimize query performance and transaction processing.

InnoDB effectively prevents phantom reading through Next-KeyLocking mechanism. 1) Next-KeyLocking combines row lock and gap lock to lock records and their gaps to prevent new records from being inserted. 2) In practical applications, by optimizing query and adjusting isolation levels, lock competition can be reduced and concurrency performance can be improved.


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