如何做到这一点:Users::whereNotIn('user_id', [$all_users])->update(['disabled' => 1]); 产生这个正确的查询: update usersset disabled= 1, users. updated_at= '2020-01-03 14:11:09' 其中user_id不在 ('642','532','539','588','488','601')
我无法摆脱斜线。
字符串是这样构建的: $all_users=$all_users.$user_id->id."','";
如果我打印 $all_users 字符串,它会正确打印,见下文 echo $all_users; 产生:'642','532','539','588','488','601'
用户::whereNotIn('user_id', [addslashes($all_users)])->update(['disabled' => 1]); 产生:更新users集disabled= 1, users. updated_at= '2020-01-03 13:53:02' 其中user_id不在('\'642\',\'532\',\'539\',\'588\',\'488\',\' 601\'')
用户::whereNotIn('user_id', [$all_users])->update(['disabled' => 1]); 产生:更新users集disabled= 1, users. updated_at= '2020-01-03 14:11:09' 其中user_id不在('\'642\',\'532\',\'539\',\'588\',\'488\',\' 601\'')
//我也试过这个 //Users::whereNotIn('user_id', [$all_users])->update(['disabled' => 1]); //Users::whereNotIn('user_id', [removeslashes($all_users)])->update(['disabled' => 1]); //Users::whereNotIn('user_id', [addslashes($all_users)])->update(['disabled' => 1]); //Users::whereNotIn('user_id', [str_replace("","\", $all_users)])->update(['disabled' => 1]);
谢谢 !
阿波罗的战车