5

I understood there wasn't much, if any different between int and integer in PHP. I must be wrong.

I'm passing a integer value to a function which has int only on this value. Like so:-

$new->setPersonId((int)$newPersonId); // Have tried casting with (int) and intval and both

The other side I have:-

    public function setPersonId(int $value) {
        // foobar
    }

Now, when I run - I get the message:-

"PHP Catchable fatal error: Argument 1 passed to setPersonId() must be an instance of int, integer given"

I have tried casting in the call with (int) and intval().

Any ideas?

  • PHP does not support type-hinting for the standard data types (int, doubles), but does support type-hinting of objects. – gurudeb Jan 10 '13 at 13:46
  • Sure - I read that too - so what's the solution? – waxical Jan 10 '13 at 13:47
  • 1
    remove 'int' from public function setPersonId(int $value) – gurudeb Jan 10 '13 at 13:48
  • read this: ch2.php.net/language.oop5.typehinting – gurudeb Jan 10 '13 at 13:52
  • As I mentioned, I've read this. – waxical Jan 10 '13 at 13:53
14

Type hinting in PHP only works for objects and not scalars, so PHP is expecting you be passing an object of type "int".

You can use the following as a workaround

public function setPersonId($value) {
    if (!is_int($value)) {
        // Handle error
    }
}
  • Sure, I read this - but how can you then handle that? You can not convert? Are we saying the value needs to be int from the start or nothing. – waxical Jan 10 '13 at 13:48
  • 1
    If you want the value to be an int, but is_int returns false, you could cast it $value = (int) $value;. If you don't care if it's an int or not, just remove the is_int check. – fin1te Jan 10 '13 at 13:51
  • This is pretty horrid, but admittedly seems the only way to go. PHP doesn't get it :/ – waxical Jan 10 '13 at 14:10
  • In PHP 7, type hinting (now called type declaration) allows specifying scalar types too, see php.net/manual/en/… – dregad Mar 25 '16 at 19:14
-2

To explicitly convert a value to integer, use either the (int) or (integer) casts. However, in most cases the cast is not needed, since a value will be automatically converted if an operator, function or control structure requires an integer argument. A value can also be converted to integer with the intval() function.

http://php.net/manual/en/language.types.integer.php

  • Nowhere near the answer. – waxical Jan 10 '13 at 13:50
-3

Make sure that PersonID property is defined as int not integer:

private int $personId;

instead of

private integer $personId;

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