Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm taking boost::operators (clang 2.1, boost 1.48.0) for a spin, and ran into the following behavior I can't explain. It seems that when I add my own operator double() const method to my class Ex (as I'd like to allow my users to idiomatically use static_cast<double>() on instances of my class), I no longer get a compiler error when trying to use operator== between dissimilar classes. In fact, it seems that operator== is not called at all.

Without operator double() const, the class works completely as expected (save for that it now lacks a conversion operator), and I receive the correct complier error when trying f == h.

So what is the right way to add this conversion operator? Code below.

// clang++ -std=c++0x boost-operators-example.cpp -Wall -o ex  
#include <boost/operators.hpp>
#include <iostream>


template <typename T, int N>
class Ex : boost::operators<Ex<T,N>> {
 public:
  Ex(T data) : data_(data) {};
  Ex& operator=(const Ex& rhs) {
    data_ = rhs.data_;
    return *this;
  };
  T get() {
    return data_ * N;
  };
  // the troubling operator double()
  operator double() const {
    return double(data_) / N;
  };
  bool operator<(const Ex& rhs) const {
    return data_ < rhs.data_;
  };
  bool operator==(const Ex& rhs) const {
    return data_ == rhs.data_;
  };
 private:
  T data_;
};

int main(int argc, char **argv) {
  Ex<int,4> f(1);
  Ex<int,4> g(2);
  Ex<int,2> h(1);

  // this will fail for obvious reasons when operator double() is not defined
  //
  // error: cannot convert 'Ex<int, 4>' to 'double' without a conversion operator

  std::cout << static_cast<double>(f) << '\n';


  std::cout 
    // ok
    << (f == g) 

    // this is the error I'm supposed to get, but does not occur when I have
    // operator double() defined 
    //
    // error: invalid operands to binary expression 
    //  ('Ex<int, 4>' and 'Ex<int, 2>')
    // note: candidate function not viable: no known conversion from 
    //  'Ex<int, 2>' to 'const Ex<int, 4>' for 1st argument
    //   bool operator==(const Ex& rhs) const 
    << (f == h)  
    << '\n';
}
share|improve this question

1 Answer 1

up vote 5 down vote accepted

You should mark your operator double() as explicit. That allows the static cast, but prevents it being used as an implicit conversion when you test for equality (and in other cases).

share|improve this answer
    
Thanks, this worked. Could you explain in a bit more detail on how the compiler thought an equality test merited an implicit conversion? –  Nicholas Palko Mar 7 '12 at 14:49
1  
When the compiler does overload resolution it includes the built in operators - including operator ==(double, double). And it's allowed to use one implicit conversion for each argument, so that one is a valid candidate. And there's no better alternative so it is chosen. –  Alan Stokes Mar 7 '12 at 15:53
    
The thing about implicit conversions (conversion operators and constructors) is that they're implicit. By having one you're pretty much saying that your type is equivalent to a double. This is useful when you need it, but normally it's best to keep conversions explicit. –  Alan Stokes Mar 7 '12 at 15:56
    
Awesome, thanks again Alan! –  Nicholas Palko Mar 7 '12 at 16:43

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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