3

I am getting this syntax error when running my php. Here is the code for a class I am trying to costruct:

function makeObject($s) {
    $secobj = new mySimpleClass($s);
    return $secobj;
}

class mySimpleClass {

    $secret = ""; 

    public function __construct($s) {
        $this -> secret = $s;
    }

    public function getSecret() {
        return base64_encode(string $secret);
    }
}

Anyone see whats wrong? Thanks!

3

You need to set the visibility of $secret

private $secret = "";

Then just remove that casting on the base64 and use $this->secret to access the property:

return base64_encode($this->secret);

So finally:

class mySimpleClass 
{

    // public $secret = "";
    private $secret = '';

    public function __construct($s) 
    {
        $this->secret = $s;
    }

    public function getSecret() 
    {
        return base64_encode($this->secret);
    }
}
  • that seemed to work! thanks! – Felicia Nov 15 '14 at 7:22
  • @Felicia sure, im glad this helped – Ghost Nov 15 '14 at 7:23
  • so it is supposed to echo mySimpleClass Object ( [secret:mySimpleClass:private] => Honey Pot ) sg9uzxkgug90 but it only echos mySimpleClass Object ( [secret] => Honey Pot ) – Felicia Nov 15 '14 at 7:49
  • @Felicia you need to echo it from your getter method. echo $obj->getSecret() – Ghost Nov 15 '14 at 7:57
  • 1
    Aye good, no need for the $secret to be public at this point. – Cliffordlife Nov 15 '14 at 8:13
0

I suggest you to declare $secret as public or private & access it using $this->. Example:

class mySimpleClass {
    public $secret = "";
    public function __construct($s) {
        $this -> secret = $s;
    }
    public function getSecret() {
        return base64_encode($this->$secret);
    }
}

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.