如何解决如何解决 Laravel 6 中的 MariaDB 语法错误?
我使用的是 XAMPP,MysqL 版本是:MysqL Ver 15.1 distrib 10.2.10-MariaDB,for Win32 (AMD64)
目前,我从一个雄辩的查询中收到一个错误,但我仍然找不到确切的错误是什么。我将查询与抛出的错误一起发布,请有人检查它以帮助我解决它。提前致谢。
$employees = Employee::join('store','store.id','=','employee.store_id')
->whereRaw("employee.id IN (".$storeWeekSchedule->employees.")")
->where('employee.temporary_status','1')
->where('employee.status_id','1')
->where('employee.position_id','>','0')
->select('employee.id AS id',DB::raw('concat(employee.first_name," ",employee.last_name) AS FullName'),'employee.store_id','employee.date_of_birth')
->orderBy('store.id')
->orderBy('employee.last_name')
->orderBy('employee.first_name')
->get();
错误:
sqlSTATE[42000]: Syntax error or access violation: 1064 You have an error in your sql Syntax; check the manual that corresponds to your MariaDB server version for the right Syntax to use near ')) and `employee`.`temporary_status` = ? and `employee`.`status_id` = ? and `emp' at line 1 (sql: select `employee`.`id` as `id`,concat(employee.first_name," ",employee.last_name) AS FullName,`employee`.`store_id`,`employee`.`date_of_birth` from `employee` inner join `store` on `store`.`id` = `employee`.`store_id` where JSON_CONTAINS(employee.id IN ()) and `employee`.`temporary_status` = 1 and `employee`.`status_id` = 1 and `employee`.`position_id` > 0 order by `store`.`id` asc,`employee`.`last_name` asc,`employee`.`first_name` asc)
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