Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

In the code below I call a function (it happens to be a constructor) in which I have type hinting. When I run the code I get the following error:

Catchable fatal error: Argument 1 passed to Question::__construct() must be an instance of string, string given, called in run.php on line 3 and defined in question.php on line 15

From what I can tell the error is telling me that the function is expecting a string but a string was passed. Why isn't it accepting the passed string?

run.php:

<?php
require 'question.php';
$question = new Question("An Answer");
?>

question.php:

<?php
class Question
{
   /**
    * The answer to the question.
    * @access private
    * @var string
    */
   private $theAnswer;

   /**
    * Creates a new question with the specified answer.
    * @param string $anAnswer the answer to the question
    */
   function __construct(string $anAnswer)
   {
      $this->theAnswer = $anAnswer;
   }
}
?>
share|improve this question

4 Answers 4

up vote 3 down vote accepted

Just remove string from constructor (not supported) , it should work fine eg:

function __construct($anAnswer)
{
   $this->theAnswer = $anAnswer;
}

Working Example:

class Question
{
   /**
    * The answer to the question.
    * @access private
    * @var string
    */
   public $theAnswer;

   /**
    * Creates a new question with the specified answer.
    * @param string $anAnswer the answer to the question
    */
   function __construct($anAnswer)
   {
      $this->theAnswer = $anAnswer;
   }
}

$question = new Question("An Answer");
echo $question->theAnswer;
share|improve this answer

PHP doesn't support type hinting for scalar values. Currently, it's only possible for classes, interfaces and arrays. In your case, it's expecting an object that is an instance of a "string" class.

There is currently an implementation supporting this in the SVN trunk version of PHP, but it's undecided if that implementation will be the one that gets released in future versions of PHP, or if it will be supported at all.

share|improve this answer

Type hinting can only be used for object data types (or arrays since 5.1), not for the basic types like string, integer, float, boolean

share|improve this answer

From the PHP documentation (http://php.net/manual/en/language.oop5.typehinting.php)

Type Hints can only be of the object and array (since PHP 5.1) type. Traditional type hinting with int and string isn't supported.

No way to hint strings, ints or any other primitive type

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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