Home > Article > Backend Development > 剔除第一张表的数据时,修改第二张表的相关字段的数值
删除第一张表的数据时,修改第二张表的相关字段的数值
表xf
xf_id vip total
1 1 10
2 1 100
3 2 80
4 3 50
表vip
vip jifen
1 1000
2 500
3 800
$sql = "delete from " . $fdyu->table('xf') .
" WHERE xf_id " . db_create_in(join(',', $_POST['checkboxes'])) . //假如$_POST['checkboxes']就是xf_id:1,2,3,4
" AND school_id=" . $school_id;
$db->query($sql);
那么在删除xf_id的同时,表vip里的
1 jifen=1000-110=890 如果xf里有多个一样的vip,则减去总和,如xf表里vip为1的有两条数据,他们的total和是110,
则减110
2 jifen=500-80=420
3 jifen=800-50=750
也就是说在删除表xf 里的数据的同时,表vip里的jifen要减去xf表里的total
------解决方案--------------------
大概思路
1.先获取要删除记录的vip,和每个vip共删除的总分
select vip,sum(total) from xf where xf_id in(1,2,3,4) group by vip;
保存为数组
vip为key
total为value
$arr = array(
'1' => 110,
'2' => 80,
'3' => 50
);
2.删除对应xf_id的记录
delete from xf where xf_id in(1,2,3,4);
3.修改vip表
foreach($arr as $vip=>$total){
update vip set jifen=jifen-$total where vip=$vip
}
------解决方案--------------------
可以考虑用触发器,在MYSQL执行,给你一个例子:
<br />create trigger delete_jifen before delete on jifen<br /> for each row <br />BEGIN<br />UPDATE users SET users.sum = users.sum - <br /> (SELECT sum(jifen.jifen) from jifen WHERE jid = old.jid) where users.userid = old.userid;<br />END<br />