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C++ standard at 12.4.2 states that

[...] The address of a destructor shall not be taken. [...]

However, one can without any complaints by the compiler take the address of a wrapper around a class destructor, like this:

struct Test {
    ~Test(){};

    void destructor(){
        this->~Test();
    }
};

void (Test::*d)() = &Test::destructor;

So what's the rationale behind forbidding to take the address of a destructor directly?

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Now I'm kinda curious, if you somehow manage to destruct an object indirectly like that, what happens if you try to use some of that object's methods or data? Garbage/undefined behavior? –  Mr. Llama Oct 26 '11 at 15:57
2  
@GigaWatt: You get undefined behaviour if you access an object after it's been destroyed. (You must also make sure that the destructor doesn't get called a second time - you must never call the destructor directly on a static or automatic object, or one that you're going to delete.) –  Mike Seymour Oct 26 '11 at 16:00

2 Answers 2

up vote 16 down vote accepted

Constructors and destructors are somewhat special. The compiler often uses different conventions when calling them (e.g. to pass extra hidden arguments). If you took the address and saved it somewhere, the compiler would lose the information that the function is a constructor or destructor, and would not know to use the special conventions.

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Just curious, is there an actual compiler that uses a different convention for destructor calls? That is, does anything not treat this as simply a normal member function call? –  edA-qa mort-ora-y Oct 26 '11 at 16:03
1  
@edA-qamort-ora-y I've not looked at it recently, but in the past, it was almost univeral, at least when virtual base classes were involved. The destructor of the virtual base class must be called last, from the destructor of the most derived class; both CFront and Zortech passed a hidden argument to specify whether the destructor was of the most derived class or not. –  James Kanze Oct 26 '11 at 16:06
    
Destructors are particularly special if they're virtual which can be non-obvious and wouldn't change the type –  Flexo Oct 26 '11 at 16:08
3  
So basically the Test::destructor() method not only wraps the call to the real destructor, but also all the magic that might be needed in order to invoke it. That makes sense. Thanks! –  Fabio A. Oct 26 '11 at 16:08
1  
@DennisZickefoose I'm not sure I follow you. Once you define a class, you also define whether it has virtual bases and whatnot, so there's just one context, or so it seems to me. Can you give any specific example of when two different implementations of Test::~Test() are invoked and the contexts they are attached to? –  Fabio A. Oct 26 '11 at 16:40

One of the simplest reasons is that the destructor has no return type, so what would be the type of &Test::~Test? There's no such type, so taking destructor's address is forbidden.

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1  
A destructor has no declared return type; in practice, it's return type is void. Your argument is valid for constructors, but for destructors, the actual reason is the one I posted. –  James Kanze Oct 26 '11 at 16:03
    
@James Kanze: in practice, it's low-level return type can be anything. From the language's point of view, it has no return type. –  Fanael Oct 26 '11 at 16:05
    
@JamesKanze, It's hard to get into the minds of who wrote the standard, but I see no reason why this couldn't be the source of the reason. –  edA-qa mort-ora-y Oct 26 '11 at 16:06
    
That's true as well, but I would turn the question around and ask: why does a destructor not have the void return type so the address could be taken? :) –  Fabio A. Oct 26 '11 at 16:10
    
@edA-qamort-ora-y I suppose the simplest answer is "because it's not". The rule predates the standard, and you can find its justification in books like the ARM. –  James Kanze Oct 26 '11 at 16:37

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