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For the sake of clarity Let my new class be:

class MyInt{
    public: 
      MyInt(int x){theInt = x /10;} 
      int operator+(int x){return 10 * theInt + x;} 
    private 
      int theInt; 
};

let's say I want to be able to define:

MyInt Three(30); 
int thirty = Three; 

But in order to get this result I'm writing:

MyInt Three(30); 
int thirty = Three + 0; 

how can I get automatic conversion from my Custom class to a built-in type?

share|improve this question
2  
Remark: it's usually a bad idea to have both conversions implicit (here int->MyInt via the non-explicit constructor and MyInt->int via a conversion operator). (Consider for example std::string, for which there is an implicit conversion from const char* (converting constructor) but not to const char* (for this you need to call .c_str() or related member functions).) [Also, typo: private -> private:] – gx_ Aug 30 '13 at 13:58
up vote 12 down vote accepted

With a type conversion function:

class MyInt{
    public: 
      MyInt(int x){theInt = x /10;} 
      int operator+(int x){return 10 * theInt + x;} 

      operator int() const { return theInt; } // <--

    private 
      int theInt; 
};
share|improve this answer
    
Just tried clang++, it work! – Jiejing Zhang Aug 30 '13 at 13:54
4  
With the added note that doing this should be transparent. That is, if you are converting to an int, the class should be a numeric class and not some custom class that does something totally unrelated. – Zac Howland Aug 30 '13 at 13:55
    
It should be const (but operator+ too, if not a non-member function), and should probably return 10 * theInt according to OP's weirdness. – gx_ Aug 30 '13 at 14:06
    
@gx_ thanks, I agree about const. I'll let OP do the arithmetic :) – jrok Aug 30 '13 at 14:07

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