13

I am trying to use the constructor inheritance feature of C++11. The following snippet (copied from somewhere, I don't remember whence) works completely fine:

#include <iostream>

struct Base {
  Base() : Base(0) {}
  Base(int a) : Base(a, 0) {}
  Base(int a, double b) { std::cout << "Base(" << a << "," << b << ")" << std::endl; }
};

struct Derived : Base {
  using Base::Base;
  Derived(const Derived& that) = delete;  // This line is the culprit
};

int main(int argc, char* argv[]) {
  Derived d1;
  Derived d2(42);
  Derived d3(42, 3.14);
}

That is, until the line marked by the comment is added; because then all hell breaks loose:

> g++ -std=c++11 -o test test.cpp
test.cpp: In function ‘int main(int, char**)’:
test.cpp:18:11: error: no matching function for call to ‘Derived::Derived()’
   Derived d1;
           ^
test.cpp:18:11: note: candidates are:
test.cpp:13:16: note: Derived::Derived(int)
    using Base::Base;
                ^
test.cpp:13:16: note:   candidate expects 1 argument, 0 provided
test.cpp:13:16: note: Derived::Derived(int, double)
test.cpp:13:16: note:   candidate expects 2 arguments, 0 provided

It seems as if deleting the copy constructor also somehow made the default constructor from Base inaccessible. Googling the problem didn't bring up anything useful; SO suggested this issue, but as far as I understand, I do not use copy initialization in this snippet. Could someone shed some light on what has happened here?

(The compiler that generated the message above is GCC 4.8.2; however, clang returns a similar error message.)

3
  • 2
    The default constructor isn't inherited.
    – T.C.
    Oct 5, 2015 at 17:50
  • T.C. How so? In the Derived d1; line, I clearly see Base() called. Oct 5, 2015 at 17:57
  • @T.C. choice of words is misleading. Of course, constructors are inherited - otherwise, you would not be able to call them from, the derived class. It just used for different class.
    – SergeyA
    Oct 5, 2015 at 18:00

3 Answers 3

13

The problem is that marking a copy constructor with delete makes it user-declared, which in effect deletes the default constructor of that class (in your case Derived). The behaviour can be seen in this simple code:

struct X
{
    X(const X&) = delete; // now the default constructor is not defined anymore
};

int main() 
{
    X x; // cannot construct X, default constructor is inaccessible 
}

As a side remark: even if Base::Base() would be inherited, the compiler would see it like Derived(): Base(){}. But Derived is deleted, so it cannot really call Base::Base(). In general, a using Base::Base statement is just syntactic sugar for the corresponding compiler-generated Derived(params): Base(params){}.

3
  • That was the link I was missing. Never thought deleting something would make count as "customizing" it. Thanks! Oct 5, 2015 at 18:01
  • @DavidNemeskey Yes, it is indeed quite confusing, but that's how it works.
    – vsoftco
    Oct 5, 2015 at 18:01
  • The standard term is user-declared.
    – T.C.
    Oct 5, 2015 at 18:02
4

Whenever you define a custom constructor you need to provide a default constructor explicitly. I.e.

Derived::Derived() = default;
4

Inheriting constructors doesn't get the special constructors -- empty, copy, move. This is because what you are asking for literally is almost always a bad idea.


Examine:

struct base {
  std::vector<int> data;
  base(base const&)=default;
  base(base&&)=default;
  base(size_t n):data(n) {}
  base()=default;
};

struct derived:base {
  using base::base;
  std::vector<char> more_data;
};

do you really want derived(base const&) to exist? Or derived(base&&)? Both would hopelessly slice derived.

The danger of those operations happening "accidentally" means you have to bring them in explicitly if you want them.


The copy/move/default ctors, by default, happen to just call the parent version, plus the ctors of member variables. There is no need (usually) to involve inheriting them from your parent.

However, once you =delete, =default or define one of these special ctors, the other ones stop being generated by the compiler. So you have to =default the other ones, if you still want them to stick around.

2
  • Thanks for the explanation. Even =default counts as user-declared? Oct 6, 2015 at 12:02
  • @DavidNemeskey No. First, because I was sloppy. Second, because user-declared is a phrase defined in the standard (I believe), and I'm avoiding using those, because they have careful technical meanings. But =default can have some effects -- if you =default the copy ctor, the move ctor is suppressed, and vice versa. Live example. The same isn't true of =default the nullary ctor. Live example Oct 6, 2015 at 12:34

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