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This is my bootstrap file:

class Bootstrap {

function __construct() 
{
    $url = $_GET['url'];
    //удаляем слеш с конца, чтобы избежать ошибки метода
    $url = rtrim($url,'/');
    //делим по слешу
    $url = explode('/',$url);
    //print_r($url);
    $file = 'controllers/' . $url[0] . '.php';
        if(file_exists($file)) 
    {
    require 'controllers/' . $url[0] . '.php';
        $controller = new $url[0];
    }
    else 
    {
    require '/../controllers/error.php';
    $error = new error();
    $error->classError();
    return false;
    }


    if
    (isset($url[2])){
        $controller->{$url[1]}($url[2]);
    }
    else
    {
    if(isset($url[1])){
    if(method_exists($url[0],$url[1])) {
        $controller->{$url[1]}();
        }
        else {
        $error->methodError();

        }
    }
    }
}

}

As you see i created here an object, and called classError function:

else 
    {
    require '/../controllers/error.php';
    $error = new error();
    $error->classError();
    return false;
    }

Then i want to call another method in another place:

else {
    $error->methodError();  
    }

And it says: Fatal error: Call to a member function methodError() on a non-object in Z:\home\localhost\www\oop\mvc\mvc\libs\bootstrap.php on line 39.

When i create an other object for methodError method it works. The question is, why should i create another object, if i already create an one under it?

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closed as too localized by Gordon Apr 17 '13 at 16:18

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

3  
Your $error is created in an else branch. What happens if your code doesn't enter the else branch? –  DCoder Apr 17 '13 at 16:07
    
Oh yea, i just realized it lol –  Tigran Muradyan Apr 17 '13 at 16:43

4 Answers 4

Your an object is not created for else condition.

class Test {
    private $error;

    function __construct() {
      $this->error = new error();
    }

   public function test() {
      if( 1 == 1) {
        $this->error->methodError();
      }
      else {
            //
        $this->error->methodError();
      }
   }
}
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Your instantiation is in an else part... What if the code never enters the else part? Then $error will be undefined.

Btw. you won't create two objects, only write the code to instantiate the object twice.

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You could solve this moving this line: $error = new error(); above the if statements. Then your object will be created regardless of what happens in your first if statement making the object available for your next if statement.

class Bootstrap {

    function __construct() {
        $url = $_GET['url'];
        //??????? ???? ? ?????, ????? ???????? ?????? ??????
        $url = rtrim($url,'/');
        //????? ?? ?????
        $url = explode('/',$url);
        //print_r($url);
        $file = 'controllers/' . $url[0] . '.php';

        $error = new error();

        if ( file_exists($file)) {
            require 'controllers/' . $url[0] . '.php';
            $controller = new $url[0];
        } else {
            require '/../controllers/error.php';
            $error->classError();
            return false;
        }


        if (isset($url[2])) {
            $controller->{$url[1]}($url[2]);
        } else {
            if(isset($url[1])) {
                if(method_exists($url[0],$url[1])) {
                    $controller->{$url[1]}();
                } else {
                    $error->methodError();

                }
            }
        }
    }

}
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You create first $error in a place where PHP code does not execute always.
As quick solution you may define $error again.

else {
    require '/../controllers/error.php';
    $error = new error();
    $error->methodError();  
}
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