1

I’ve tagged this question PHP, but it’s more a question on design patterns, namely the factory pattern; PHP is just the programming language I’m using.

I’m building an estate agents’ (“real estate” for American cousins) website. I have a Property class, but then other classes that extend this, i.e. LettingProperty, CommercialProperty that has fields specific to that type of property.

In my controller I want to display a particular property. This is easy as I pass the property ID as a parameter. My approach is to then create a factory class that returns the property as an instance of the relevant class. For example, if the property with an ID of 1 is a letting property, return an instance of LettingProperty. If it’s just a standard “for sale” property, an instance of Property.

How can I go about this? I created a PropertyFactory class and implemented a method called buildFromId(), but having trouble on creating an elegant solution to:

  • Find the relevant record in my properties database table
  • Do any LEFT JOINs (i.e. if it’s a letting property left join the relevant data from letting_properties (foreign key: property_id)
  • Return the resultant data, as an instance of the corresponding class

Is a factory approach the correct design pattern for this scenario? And if so, how could I go about the above?

  • it looks like you have more problems with database than with factory pattern..so how is your db design? why are you facing problems with left join? – bitWorking Jul 15 '13 at 16:55
  • @redreggae he doesn't know what table to join to when he is issuing the query as Property can be a Raw Property that has no joins, a LettingProperty that would join to one table or a CommercialProperty that would join to a different table. – Orangepill Jul 15 '13 at 17:05
  • @martinBean It might be simpler to just issue two queries, one for the property and one for the property subtype based on the value contained within the property_type field.... to help with performance caching the results might be an appropriate action. – Orangepill Jul 15 '13 at 17:07
  • @martinbean Having the factory return a decorated (ie the Decorator Pattern) Property might be a good solution. – Orangepill Jul 15 '13 at 17:09
  • @Orangepill Exactly. I don’t know which table (if any) to join based on the ID alone. I’d rather stick to one database query if possible. I can LEFT JOIN the tables (and they’ll return null if no data exists in joining tables) but I’d like a clean method of converting this raw DB result to the relevant model class. – Martin Bean Jul 15 '13 at 17:10
0

If you already can produce a query that variably flattens the the tree using left joins then you can do something like this on the php side to create your object model. Of course you would want to fill out the implementation a more on the property types for them to really be useful.

 class Property {
    public function setPropertyValuesFromArray($array){
        foreach($array as $k=>$v){
            $this->$k = $v;
        }
    }
 }

 class CommercialProperty extends Property {}
 class LettingProperty extends Property {}

 class PropertyFactory {
    protected $db;

    public function __construct(DbConnection $db){
        $this->db = $db;
    }
    public function getPropertyById($id){
        $result = $this->db->fetchRow($queryToGetPropertyById);
        return $this->getPropertyFromArray($result);
    }
    public function getPropertyFromArray($result){
        switch($result["property_type"]){
            case "residential":
                $p = new Property();
                break;
            case "commericial":
                $p = new CommercialProperty();
                break;
            case "letting":
                $p = new LettingProperty();
                break;
            default:
                throw new Exception("Unknown Property Type ".$result["property_type"]);
                break;
        }
        $p->setPropertyValueFromArray($result);
        return $p;
    }
 }

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.