1

I am using GNU compiler. The Virtual Destructor in class B does not call the Destructor ~D(). Could anyone tell me why?

#include<iostream>
using namespace std;

class B {
  double* pd;
  public:
  B() {
  pd=new double [20];
  cout<< "20 doubles allocated\n";
  }

  virtual ~B() {   //the virtual destructor is not calling ~D()
  delete[] pd;
  cout<<"20 doubles deleted\n";
  }

  };

class D: public B {
  int* pi;
  public:
  D():B() {
  pi= new int [1000];
  cout<< "1000 ints allocated\n";
  }
  ~D() {
  delete[] pi;
  cout< "1000 ints deleted\n";
  }
  };

int main() {
  B* p= new D; //new constructs a D object

Delete should call the virtual destructor in class B but it doesn't.

  delete p; 
  }
2
  • 1
    cout< "1000 ints deleted\n"; you got a typo there
    – Borgleader
    Commented Aug 5, 2013 at 10:39
  • This should work (if it compiled, you have a trivial syntax error). What evidence do you have that it doesn't? Commented Aug 5, 2013 at 10:39

1 Answer 1

8

It does, you just don't see the output because you've got a typo:

cout < "1000 ints deleted\n";
//   ^, less than

Your compiler is being too permissive, this shouldn't compile (at least in C++11).

It probably does because basic_ios::operator void* makes a stream object implicitly convertible to void* and your compiler is permitting a string literal to decay to char* (which is convertible to void*). cout < "x"; then simply does pointer comparison using built-in operator<(void*, void*) and throws away the result.

0

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.