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I have a simple C++ class for which I need to know whether an object should be delete'd or not at a certain point in my program. The mechanism should be portable across platforms and modern C++ compilers.

One way of doing it I can think of is: have a member field which is not initialized by the constructor but instead is assigned by the overloaded operator new, like so:

class message
{
protected:
    int id;
    bool dynamic;
public:
    message(int _id): id(_id)
    {
        // don't touch `dynamic` in the constructor
    }

    void* operator new(size_t size)
    {
        message* m = (message*)::operator new(size);
        m->dynamic = true;
        return m;
    }

    void operator delete(void* m)
    {
        if (((message*)m)->dynamic)
            ::operator delete(m);
    }
};

Apart form that it "feels" wrong, what is wrong with this method?

Edit: should have mentioned that the object is either dynamic or static (and never stack-local) and thus is guaranteed to be either zeroed or initialized with new.

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11  
Why do you need this? I can guarantee that this is the wrong way to go about it, even if there was a way to do what you ask (I'm fairly certain there is not). You shouldn't have to decide at run time whether to delete a pointer or not, because you should know (edit: at design time, i.e. a priori as far as the program is concerned) who owns what and what its lifetime is. –  delnan Jul 30 '13 at 22:49
1  
Make the destructor private. Then the answer is always "yes". –  Kerrek SB Jul 30 '13 at 22:51
    
@delnan: no, you can't guarantee that :) It's a question of optimization. I have a message queue with a lot of messages passing by; in some cases they are dynamically allocated, but in some other cases, just for the sake of optimization, I can re-use static objects (and of course make sure a static object enters the message queue only once). –  mojuba Jul 30 '13 at 22:58
    
@mojuba: So your question should be "I have a message queue and want to optimize it like this, how do I...". See the XY problem. –  GManNickG Jul 30 '13 at 23:07
    
@GManNickG: no, my question is: I have objects that may be static or dynamic and I want these objects to be destroyed in just one place. –  mojuba Jul 30 '13 at 23:10

2 Answers 2

up vote 3 down vote accepted

The constructor needs to set dynamic to false, and then instead of overriding new, you need a static method like:

static message *createMessage(int _id)
{
    message *ret = new message(_id);
    ret->dynamic = true;
    return ret;
}

And then call that method instead of newing a message.

share|improve this answer
    
But then it's always overwritten, isn't it? –  delnan Jul 30 '13 at 22:50
    
Only when new is called. If it's a stack allocation, dynamic will remain set to false. –  Jim Buck Jul 30 '13 at 22:51
2  
@JimBuck: No, the constructor runs after operator new, so even if operator new sets dynamic to true, the constructor will replace that with false. –  Jon Purdy Jul 30 '13 at 22:52
    
Argh, true, got me.. editing. –  Jim Buck Jul 30 '13 at 22:54
    
It is true, I already edited my question: in my case objects are either dynamic or static, i.e. either created with new or have all fields zeroed. –  mojuba Jul 30 '13 at 22:56

Don’t do this. Apart from the fact that it won’t work, an object shouldn’t be managing anything about its own lifetime. You can use a unique_ptr or shared_ptr with a custom deleter, and if the object is stack-allocated, you know at its allocation site; in that case, you can supply a no-op deleter such as the following:

struct null_deleter {
  template<class T>
  void operator()(const T*) const {}
};
share|improve this answer
    
You probably don't get the problem. Message objects in my case are processed and possibly also destroyed in one point of my program, while they can be created in many different places. I want to optimize my message queue by re-using static message objects whenever possible, i.e. when a message is guaranteed to enter the queue only once. It's a question of optimisation. So no, it's a run-time thing rather than compile-time. –  mojuba Jul 30 '13 at 23:08
1  
@mojuba: If he doesn't get it, it's because you didn't say what it was in the question. –  GManNickG Jul 30 '13 at 23:09

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