為什么說非對象調用成員函數fetch()
問題描述
<?phpclass Db{ private $dbConfig=['db'=>'mysql','host'=>'localhost','port'=>'3306','user'=>'root','pass'=>'root','charset'=>'utf8','dbname'=>'edu',]; //單例模式 private static $instance = null; public $insertID = null; public $num1 = null; ///數據庫的連接 private $conn = null; private function __construct($params) {//初始化參數array_merge($this->dbConfig, $params);//連接數據庫$this->connect(); } private function __clone() {// TODO: Implement __clone() method. } public static function getInstance($params=[]) {if(!self::$instance instanceof self){ self::$instance = new self($params);}return self::$instance; } private function connect() {try {$dsn="{$this->dbConfig['db']}:host={$this->dbConfig['host']};port={$this->dbConfig['port']};dbname={$this->dbConfig['dbname']};charset={$this->dbConfig['charset']}";//創建pdo對象$this->conn= new PDO($dsn,$this->dbConfig['user'],$this->dbConfig['pass']); //// $this->conn->query("SET NAMES {$this->dbConfig['charset']}");}catch (PDOException $e){ die('數據庫連接失敗'.$e->getMessage());} } public function exec($sql) {$num = $this->conn->exec($sql);if($num>0){ if(null !== $this->conn->lastInsertID()) {$this->insertID = $this->conn->lastInsertID(); } $this->num1= $num;}else{ $error = $this->conn->errorInfo(); //0 是錯誤標識符 1 是錯誤代碼 2 是錯誤信息 print '操作失敗'.$error[0].':'.$error[1].':'.$error[2];} } public function fetch($sql) {return $this->conn->query($sql)->fetch(PDO::FETCH_ASSOC); } public function fetchALl($sql) {return $this->conn->query($sql)->fetch(PDO::FETCH_ASSOC);; }}
問題解答
回答1:pdo對象沒有獲取成功,調用了一個對象成員方法fetch, 檢查連接參數
相關文章:
1. 如何解決docker宿主機無法訪問容器中的服務?2. 請問關于 Java static 變量的問題?3. 跨類調用后,找不到方法4. 頁面用CSS3的scale屬性進行了縮放,圖片模糊解決不了,那么字體能否讓它們不模糊呢?5. javascript - 微信IOS頁面中input type=number輸入數字無法顯示,安卓顯示正常6. 淺談vue生命周期共有幾個階段?分別是什么?7. javascript - 動態添加路由報錯8. ios - Crash Log 里關于微信SDK的問題9. javascript - hash為什么可以做路由跳轉,不會刷新頁面10. $( "html" ).parent()方法返回一個包含document的集合,而$( "html" ).parents()返回一個空集合 哪位大神來解釋下?
網公網安備