我创建了一个用于堆栈对象层和闭包的类,但我的服务器还没有在php 5.6上运行。我想知道如何转换...$parameters因为我无法通过用call_user_func_array()替换所有内容来修复它,然后buildCoreClosure()方法将抛出错误,例如因为闭包不是数组...
class Stack
{
/**
* Method to call on the decoracted class.
*
* @var string
*/
protected $method;
/**
* Container.
*/
protected $container;
/**
* Middleware layers.
*
* @var array
*/
protected $layers = [];
public function __construct(Container $container = null, $method = null)
{
$this->container = $container ?: new Container;
$this->method = $method ?: 'handle';
}
public function addLayer($class, $inner = true)
{
return $inner ? array_unshift($this->layers, $class) : array_push($this->layers, $class);
}
public function addInnerLayer($class)
{
return $this->addLayer($class);
}
public function addOuterLayer($class)
{
return $this->addLayer($class, false);
}
protected function buildCoreClosure($object)
{
return function(...$arguments) use ($object)
{
$callable = $object instanceof Closure ? $object : [$object, $this->method];
return $callable(...$arguments);
};
}
protected function buildLayerClosure($layer, Closure $next)
{
return function(...$arguments) use ($layer, $next)
{
return $layer->execute(...array_merge($arguments, [$next]));
};
}
public function peel($object, array $parameters = [])
{
$next = $this->buildCoreClosure($object);
foreach($this->layers as $layer)
{
$layer = $this->container->get($layer);
$next = $this->buildLayerClosure($layer, $next);
}
return $next(...$parameters);
}
}
答案 0 :(得分:4)
删除
...$arguments
在每个函数的参数列表中,并将其替换为以下(函数内部的早期)
$arguments = func_get_args();
您可以获得相同的参数值。即使未在函数的参数列表中定义,参数仍将传递给func_get_args()。
答案 1 :(得分:0)
修复方法是将...$arguments替换为func_get_args()