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I want to specify the Datatype that can be given to a Function.

In this demo Code (as an example) I would like to Specify the Datatype of the Arguments given to the "__construct()" Function so that it only takes INTfor the $id, and Objects of the Type "example2" for$some_object.

Do you have any idea how I can Achieve this?

<?php

    class example1{

        private $id;
        private $example2;
        function __construct($id,$some_object){
            $this->id = $id;
            $this->object = $some_object;
        }

        function do_something(){
            $this->example2->moep(); 
        }

    }
    class example2{
        public function moep(){
            print("MOEP!!!");
        }
    }
?>
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4 Answers 4

Yes and no.

There's some type hinting in PHP5, but it doesn't allow for scalar types. So no for int and string, but yes for pretty much everything else (including array, strangely enough).

See: http://php.net/manual/en/language.oop5.typehinting.php

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Thank you very much! I will have a close look at hinting. –  user1800353 Nov 5 '12 at 15:22

You have type hinting: http://php.net/manual/en/language.oop5.typehinting.php

But, to quote from the manual:

Type hints can not be used with scalar types such as int or string.
Traits are not allowed either.

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scalar typehints will likely be included in php 5.5. there was a discussion to include them in 5.4 already. –  Gordon Nov 5 '12 at 15:39

In php, you can only type hint object (and arrays). You can't type hint scalars:

http://php.net/manual/en/language.oop5.typehinting.php

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check type in constructor and throw an exception if needed:

function __construct($id,$some_object){
    if (!is_int($id)) throw new UnexpectedValueException("Argument 1 must be an integer");
    if (!is_object($some_object)) throw new UnexpectedValueException("Argument 2 must be an instance of any object");

    $this->id = $id;
    $this->object = $some_object;
}
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This is also very Helpfull.. Thank you very much :) –  user1800353 Nov 5 '12 at 16:04

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