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Let's say I have a class that represents a printing job: CPrintingJob. It knows nothing of the document being printed, just the job state - whether the job was queued, rejected, carried on etc.

The idea is an object of this class is instantiated whenever some printing needs to be done, then passed to the printing module along with other data, then the job's creator checks its state to see how printing is going.

Suppose CPrintingJob inherits two interfaces:

class IPrintingJob // this one is to check the job state
{
    virtual TState GetState() const = 0;
    // ... some other state-inquiring methods

    class ICallback // job's owner is notified of state changes via this one
    {
        virtual void OnStateChange( const IPrintingJob& Job ) = 0; 
    };
};

and

class IPrintingJobControl // this one is for printing module to update the state
{
    virtual void SetState( const TState& NewState ) = 0;
    // ... some other state-changing methods
};

Problem is, the class that creates a CPrintingJob object shouldn't have access to the IPrintingJobControl, but the printing module CPrintingJob is being passed to must be able to change its state and, therefore, have access to that interface.

I suppose this is exactly the case where friends should be used but I have always avoided them as an inherently flawed mechanic and consequently have no idea of how to use them properly.

So, how do I do it properly?

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A Factory! The factory creation should return an IPrintingJob object that is actually a CPrintingJob. Then passing the pointer onward via a cast to CPrintingJob. –  Eli Iser Dec 3 '12 at 10:10
5  
Friend is a flawed mechanic? Where did you get that from? Not using friend leads to bad design, in which you overexpose the inner workings of your classes. –  Let_Me_Be Dec 3 '12 at 10:10
1  
@Let_Me_Be: I 100% agree with you, but I still remember that every teacher I ever had in regards to C++ considered friends to be evil.. –  MFH Dec 3 '12 at 10:13
2  
Simply pass the object to each consumer as the appropriate interface type instead of the do-everything CPrintJob. The consumer can certainly cast it back, but that's their problem. –  Jon Dec 3 '12 at 10:14
1  
@MFH that sentence is really begging to be taken out of context. –  R. Martinho Fernandes Dec 3 '12 at 10:15

2 Answers 2

up vote 1 down vote accepted

Use a factory and have the factory return an instance of IPrintingJob (best wrapped inside a smart_ptr). e.g.:

 struct PrintingFactory {
   static auto create() -> std::unique_ptr<IPrintingJob> {
     return std::unique_ptr<IPrintingJob>(new CPrintingJob());//as there is currently no std::make_unique..
   }
 }

Once you have to use the JobControl you can simply cast the pointer via std::dynamic_pointer_cast.

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unique_ptr should be the default smart pointer. Please don't force silly ownership semantics on the consumers of your interfaces. –  R. Martinho Fernandes Dec 3 '12 at 10:17
1  
Or even better, make the control-class the factory. Intuitively it makes sense that a job should be bound to one controller, and this gives the controller full control of the job without having to resort to downcasting. –  Björn Pollex Dec 3 '12 at 10:17
    
@R.MartinhoFernandes: If there is only one reference to the PrintingJob, I agree, but that can't be deducted from the question... EDIT: As the job is likely to be registered with some controller and at the same time will be held in the user code I consider shared_ptr to be the right tool... –  MFH Dec 3 '12 at 10:19
    
@MFH it can be deduced from your code: there is only the one it creates. As stated in GOTW #103, you can easily make a shared_ptr out of a unique_ptr at any time. You cannot never change from a shared_ptr, though. –  R. Martinho Fernandes Dec 3 '12 at 10:23
    
@R.MartinhoFernandes: got it & replaced it (but switching from unique_ptr to shared_ptr certainly has a performance impact [assuming that make_shared is implemented using only one allocation...]), that's one of the reasons why I normally use share, when multiple references are remotely possible... (See figure 2) –  MFH Dec 3 '12 at 10:32

After some deliberation I've decided that:

  1. This whole thing is definitely more trouble than it's worth;

  2. (A slightly modified) version of MFH's answer above is the only, hence the best, way to go.

Thanks everyone for the input, it certainly has been enlightening.

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