例如这样一个表,我想统计email和passwords都不相同的记录的条数
CREATE TABLE IF NOT EXISTS `test_users` ( `email_id` int(11) unsigned NOT NULL auto_increment, `email` char(100) NOT NULL, `passwords` char(64) NOT NULL, PRIMARY KEY (`email_id`) ) ENGINE=MyISAM DEFAULT CHARSET=utf8 AUTO_INCREMENT=6 ; INSERT INTO `test_users` (`email_id`, `email`, `passwords`) VALUES (1, ‘[email protected]', ‘1e48c4420b7073bc11916c6c1de226bb'), (2, ‘[email protected]', ‘5294cef9f1bf1858ce9d7fdb62240546′), (3, ‘default@gmail.com', ‘5294cef9f1bf1858ce9d7fdb62240546′), (4, ‘[email protected]', ”), (5, ‘[email protected]', ”);
通常我们的做法是这样:
SELECT COUNT(*) FROM test_users WHERE 1 = 1 GROUP BY email,passwords
这样的结果是什么呢?
COUNT(*) 1 2 1 1
显然这不是我要的结果,这样统计出来的是相同email和passwords的各个记录数量之和,下面这样就可以了:
SELECT COUNT(DISTINCT email,passwords) FROM `test_users` WHERE 1 = 1