15

I have a relatively simple function which uses a foreach

function foo($t) {
     $result;
     foreach($t as $val) {
         $result = dosomething($result, $val);
     }
     return $result;
}

I would like to type hint, and Traversable seems to be the exact type hint I need

 function foo(Traversable $t) {

However this gives a E_RECOVERABLE_ERROR when using an array (which is of course usable in a foreach): example

 Argument 1 passed to foo() must implement interface Traversable, array given

Is there a way to type hint or is this not possible?

  • From the manual (the link that you posted): Abstract base interface that cannot be implemented alone. Instead it must be implemented by either IteratorAggregate or Iterator. – alfasin Jun 10 '13 at 19:55
  • I believe you can actually use array as the hint, I will test my theory, yes you can – Dale Jun 10 '13 at 19:56
  • @alfasin And as such any class implementing Iterator will also match Traversable, as Iterator is a subtype of Traversable. Basic OOP-mechanics – dtech Jun 10 '13 at 19:58
  • Please consider solution provided to the comment in manual. BTW, I asked a similar question. – Voitcus Jun 10 '13 at 19:59
  • 1
    @Dale I apologize in advance as I must be missing something: Array don't implement Iterator (AFAIK), and you're trying to use Array, no ? – alfasin Jun 10 '13 at 20:05
14

PHP 7.1 introduces the iterable type declaration for this purpose, which accepts both arrays and instances of \Traversable.

In previous versions, you'll have to omit the type declaration.

8

There is a bug about this: #41942. Closed as 'not a bug'. As PHP arrays are not objects they cannot implement an interface and a such there is no way to type hint both array and Traversable.

You can use iterator_to_array, ArrayIterator or omit the type hint. Note that iterator_to_array will copy the whole iterator into an array an might thus be inefficient.

// These functions are functionally equivalent but do not all accept the same arguments
function foo(array $a) { foobar($a); }
function bar(Traversable $a) { foobar($a); }
function foobar($a) {
    foreach($a as $key => $value) {
    }
}

$array = array(1,2,3)
$traversable = new MyTraversableObject();

foo($array);
foo(iterator_to_array($traversable));

bar(new ArrayIterator($array));
bar($traversable);

foobar($array);
foobar($traversable);
  • 2
    You can also do foo(new ArrayIterator(array(1,2,3)) to convert arrays to objects. – mAsT3RpEE Apr 2 '14 at 23:15
3

Same problem. I've given up I simply manually code everything in the function.

This should give you the functionality you want:

function MyFunction($traversable)
{
    if(!$traversable instanceof Traversable && !is_array($traversable))
    {
        throw new InvalidArgumentException(sprintf(
            'Myfunction($traversable = %s): Invalid argument $traversable.'
            ,var_export($traversable, true)
       ));
    }
}

EDIT

If you only want to display type of $traversable. And if you want the functionality inheritable in child classes.

public function MyMethod($traversable)
{
    if(!$traversable instanceof Traversable && !is_array($traversable))
    {
        throw new InvalidArgumentException(sprintf(
            '%s::MyMethod($traversable): Invalid argument $traversable of type `%s`.'
            ,get_class($this)
            ,gettype($traversable)
       ));
    }
}
2

The problem is, that arrays are no objects, so they can't implement an interface. So you can't type hint both, array and Traversable.

  • 1
    Are there other PHP native entities which are usable in foreach but do not implement Traversable? – dtech Jun 10 '13 at 19:59
  • No, but you can write your own class that implements IteratorAggregate or Iterator, and they extend Traversable – bpoiss Jun 10 '13 at 20:14
  • 1
    But there it is: all objects iterable in foreach. If the object implements Traversable the iterator (or the aggregated iterator) will be traversed, else the object's public properties php.net/manual/en/control-structures.foreach.php – pozs Jun 10 '13 at 20:18
  • Just researched, you are right. Thank you! – bpoiss Jun 10 '13 at 20:43

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.