10

The following program does not compile in g++ 4.4 if line 8 is commented. Why? It seems that when I override std::exception constructor, I must override its destructor as well. What's the reason for this?

#include<iostream>
#include<exception>
using namespace std;

class A : public exception {
public:
    A(string msg) : _msg(msg) {}
    //~A() throw(){};                     // line 8
    const char* what() const throw() { return _msg.c_str();}    
private:
    string _msg;
};

int main()
{
}

The compilation error is:

error: looser throw specifier for ‘virtual A::~A()’
  • 2
    Does the compiler report an error message? And if so, why is it not in the question? – David Heffernan Aug 24 '13 at 9:05
  • @DavidHeffernan, thanx, fixed – cpp Aug 24 '13 at 9:06
  • 1
    It is in his question at the bottom (might be after editing though). It is the same with 4.8.1 of course because the default destructor will not have throw specifier which is requested in here. – lpapp Aug 24 '13 at 9:06
  • @Laszlo Yes, it's in the question after it was edited and the error added – David Heffernan Aug 24 '13 at 9:07
8

This is because the destructor requires a throw() specifier. If you don't specify it in your class the compiler writes it's own default destructor for you class, and the default destructor doesn't specify that you don't throw exceptions.

This is correct, since the public destructor of std::exception also specifies throw()

~A() throw(){};

from the standard (N3225) 12.4.4 :

If a class has no user-declared destructor, a destructor is implicitly declared as >defaulted (8.4). An implicitly- declared destructor is an inline public member of its class.

Therefore, if you don't declare the destructor yourself the compiler creates the next destructor. If all your exception member destructors where nothrow qualified, the compiler will probably generate a destructor with throw() specified.

~A(){};

And technically one could throw an exception from this destructor, but that would be very bad programming style, therefore an exception deriving from std::exception guarantees that you don't throw any exceptions in the destructor of a std::exception derived class.

Edit Newer compilers will provide a destructor that does have a noexcept specifier if the destructor of std::string is noexcept specified. And other compilers will also generate a noexcept destructor if all member's destructors don't throw exceptions (are noexcept qualified). This is mandated by C++11 standard in chapter 15.4. [except.spec]

14 An implicitly declared special member function (Clause 12) shall have an exception-specification. If f is an implicitly declared default constructor, copy constructor, move constructor, destructor, copy assignment operator, or move assignment operator, its implicit exception-specification specifies the type-id T if and only if T is allowed by the exception-specification of a function directly invoked by f’s implicit definition; f shall allow all exceptions if any function it directly invokes allows all exceptions, and f shall allow no exceptions if every function it directly invokes allows no exceptions. [...]

  • 4
    This isn't telling the whole story. Compiler generated destructor will have a nothrow specification if all the functions it directly invokes allow no exceptions (destructors of non-static data members and destructors of base classes). The example fails to compile because std::string member's destructor isn't marked throw(). Try replacing it with const char* and see the difference. – jrok Aug 24 '13 at 9:54
  • 1
    Both gcc 4.8.1 and clang 3.4 compile OP's code just fine. That is, in C++11. I don't know if this have been changed after C++03. – jrok Aug 24 '13 at 9:54
  • @jrok Thanks for you usefull comment, I updated my answer – hetepeperfan Aug 24 '13 at 10:15
  • I added the normative quote from the standard, if you don't mind. And +1. – jrok Aug 24 '13 at 10:23
  • @jrok, no problem, seems like a welcome addition to me:) – hetepeperfan Aug 24 '13 at 10:34

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