Die Erstellung dynamischer Eigenschaften in PHP ist veraltet: Warnung
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P粉797855790 2023-10-20 10:40:49
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Ich sehe das immer häufiger, bin mir aber nicht sicher, was getan werden muss, um diese Warnung zu stoppen:

VERALTET: Dynamische Eigenschaften erstellen... VERALTET

Das ist meine Klasse:

class database {

    public $username = "root";
    public $password = "password";
    public $port = 3306;

    public function __construct($params = array())
    {
        foreach ($params as $key => $value)
        {
            $this->{$key} = $value;
        }
    }
}

So instanziiere ich es.

$db = new database(array(
    'database' => 'db_name',
    'server' => 'database.internal',
));

Das gibt mir zwei Botschaften:

VERALTET: Dynamische Eigenschaftendatenbank erstellen::$database Veraltet

VERALTET: Dynamische Eigenschaftendatenbank erstellen::$server Veraltet


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Antworte allen(4)
P粉299174094

该警告告诉您您尝试设置的属性未在类顶部列出

当您运行此命令时:

class database {

    public $username = "root";
    public $password = "pasword";
    public $port = 3306;

    public function __construct($params = array())
    {
        foreach ($params as $key => $value)
        {
            $this->{$key} = $value;
        }
    }
}

$db = new database(array(
    'database' => 'db_name',
    'server' => 'database.internal',
));

大致相当于这样:

class database {

    public $username = "root";
    public $password = "pasword";
    public $port = 3306;
}

$db = new database;
$db->database = 'db_name';
$db->server = 'database.internal';

警告是类定义中没有行表明 $db->database$db->server 存在。

目前,它们将动态创建为非类型化公共属性,但将来,您需要显式声明它们:

class database {
    public $database;
    public $server;
    public $username = "root";
    public $password = "pasword";
    public $port = 3306;

    public function __construct($params = array())
    {
        foreach ($params as $key => $value)
        {
            $this->{$key} = $value;
        }
    }
}

$db = new database(array(
    'database' => 'db_name',
    'server' => 'database.internal',
));

在一些罕见的情况下,你实际上想说“这个类的属性是我决定在运行时添加的任何属性”;在这种情况下,您可以使用 #[AllowDynamicProperties] 属性,如下所示:

#[AllowDynamicProperties]
class objectWithWhateverPropertiesIWant {
    public function __construct($params = array())
    {
        foreach ($params as $key => $value)
        {
            $this->{$key} = $value;
        }
    }
}
  • Antwort 啊啊大师傅
    徐涛 Autor 2023-10-26 17:53:30
徐涛

山东省滨州市***工资搭嘎发撒***哈

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因此警告来自添加动态类属性的构造函数。如果您不必动态且真实地传递这些字段,那么您似乎确实将简单的事情变得过于复杂,那么请像这样尝试。

class database {

    public $username = "root";
    public $password = "pasword";
    public $port = 3306;
    public $database = 'db_name';
    public $server = 'database.internal';
}


$db = new database();

您需要动态参数有什么原因吗?您也可以这样做:

class database {

    public $username = "root";
    public $password = "pasword";
    public $port = 3306;
    public $database;
    public $server;

    public function __construct($params = array())
    {

        foreach ($params as $key => $value)
        {
            $this->{$key} = $value;
        }
    }
}

如果您提前添加参数,它们就不是动态的,您只是为已经存在的内容分配一个值。

现在应该可以正常工作,不会出现任何警告。

$db = new database(array(
    'database' => 'db_name',
    'server' => 'database.internal',
));
徐涛

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