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PHP type-hinting to primitive values?

Say, I create a function called

retrieveCount($count){
   return ++$count;
}

Just a simple example. How do I set the function to accept the type to be integers only? in Java, or other languages, we have:

public int retrieveCount(int count){
   return ++count;
}

Is there a way do to the same thing in PHP? I read on the documentation that for OOP, PHP has type hinting for complex structures, such as objects, arrays, interfaces, etc, but no for scalar types (int, string).

Is this really the case, and we cannot specify the type?

Thank you

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marked as duplicate by John Conde, Joseph Silber, Jocelyn, Ram kiran, Eric J. Jan 28 '13 at 3:02

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
See: type hinting –  John Conde Jan 28 '13 at 0:46
    
@JohnConde "Type hints can not be used with scalar types such as int or string." –  Niet the Dark Absol Jan 28 '13 at 0:49
1  
Exactly my point –  John Conde Jan 28 '13 at 0:51
    
How do they type-hint the predefined functions then? –  Lukas Bijaminas Jan 28 '13 at 0:54

3 Answers 3

up vote 1 down vote accepted

There are no direct scalar type hint possibilities PHP. But you can emulate it by checking the type inside the function and trigger an appropriate error:

function retrieveCount( $count )
{
    if( !is_int( $count ) )
    {
        // I believe E_USER_WARNING is the appropriate error level
        // equivalent to what PHP issues itself on type hint errors
        trigger_error(
            'Argument 1 passed to retrieveCount() must be an integer',
            E_USER_WARNING
        );
    }

    return ++$count;
}
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There is no direct way to do this, however you can force the type within the function like so:

function retrieveCount($count) {
    $count = intval($count);
    return ++$count;
};

See similar functions strval, floatval...

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But wouldn't that return 2, also raising a E_Notice but still, is it really a good way to solve the problem? That is, if you happen to pass an object... –  Daniel Figueroa Jan 28 '13 at 0:55
    
Well, you could use is_int() and throw an error yourself if it's the wrong type. –  Niet the Dark Absol Jan 28 '13 at 1:18

To ensure the function receives an integer type, you'll want to call is_int() like so:

function retriveCount( $count ){
  if( !is_int( $count ) )
    return 0; // or whatever you want errors to return

  return ++$count;
}

Alternatively, if you want to be able to handle strings formed like numbers that aren't necessarily numbers, you could do the following:

function retriveCount( $count ){
  if( (int)$count != $count )
    return 0; // or err value

  return ++$count; // will be integer type
}

Read why return value will be an integer without any cast in Type Juggling documentation.

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