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I am working on a project that needs to have a generic C++ wrapper for big number libraries and, if the library provides C-style functions like so:

//assignment
lib_set(lib_type data, lib_type input);
lib_set_si(lib_type data, long input);
lib_set_ui(lib_type data, unsigned long input);

//addition
lib_add(lib_type data, lib_type input);
lib_add_ui(lib_type data, unsigned long input);

In order to avoid creating temporary objects when it's not really necessary, I ended up with something like this:

class wrapper
{
private:
    lib_type data;
public:

    wrapper()
    {
        lib_set_ui(this->data, 0UL);
    }

    wrapper (const wrapper &input)
    {
        lib_set(this->data, input.data);
    }

    wrapper (const long input)
    {
        lib_set_si(this->data, input);
    }

    wrapper (const unsigned long input)
    {
        lib_set_ui(this->data, input);
    }

    wrapper &operator+= (const wrapper &input)
    {
        lib_add(this->data, input.data);
        return *this;
    }

    wrapper &operator+= (const unsigned long input)
    {
        lib_add_ui(this->data, input);
        return *this;
    }
};

Unfortunately, if I do this:

wrapper x(2);
x += -2;

the compiler (GCC / VS2010) won't even issue a warning that I'm trying to cast an int to unsigned long implicitly, and it's definitely not what I want to get...

So, in this case, how would I overload operators for the wrapper class, such that I don't need to create a temporary wrapper object when it's not needed? If I remove the wrapper &operator+= (const unsigned long input) overload, then I would have to use something like this:

wrapper x(2);
x += wrapper(-2);
x += -2;//implicitly casts -2 to wrapper

but I don't think I can rely on the fact that the compiler might be able to optimize away the extra object...

share|improve this question
    
I'd presume you're calling the const long parametred-version with both of those. There might be no conversion even going on. –  Esa Lakaniemi Dec 19 '12 at 18:50
    
@EsaLakaniemi I'm not sure I understand what you mean... –  Mihai Todor Dec 19 '12 at 18:55
1  
If you provide an overload for a signed int += does it work correctly? –  Jay Dec 19 '12 at 19:00
4  
@MihaiTodor Just the largest types (such as int64_t/uint64_t) or the largest types you require for your data. –  Andrei Tita Dec 19 '12 at 19:08
1  
@MihaiTodor Well, it's a bit complicated because of promotion rules. You will be safe, but depending on the types involved, you might get overload ambiguities (compiler error) which will require some explicit casting, which may or may not be acceptable in your case. –  Andrei Tita Dec 19 '12 at 20:39

1 Answer 1

up vote 3 down vote accepted

I don't know of a way to disable the implicit conversion as you describe. However, you can at least make the compiler issue a warning on it.

If you're using gnu Mingw/gcc just pass -Wconversion and -Wsign-conversion when compiling. You should be getting a warning now on your above code.

For MSVC, /Wall or /W4 should get you the same thing.

share|improve this answer
    
+1 for -Wsign-conversion. I was almost sure that it's enabled by either -Wall or -Wextra. Do you know any other such cute warning switch that I should send to the compiler besides -Wall -Wextra -Wconversion -Wsign-conversion to play safe? Is there any way to achieve the same thing in Visual Studio? –  Mihai Todor Dec 19 '12 at 19:33
1  
@MihaiTodor: Visual Studio warns about sign conversions by default I thought. if not, go into the project settings, and somewhere in there you can set the warning level to a higher level. (3 is default I think) –  Mooing Duck Dec 19 '12 at 19:35
    
@MooingDuck It seems I have to go to /W4, but thanks for pointing this out! It really helps. –  Mihai Todor Dec 19 '12 at 19:38
1  
@MooingDuck Ah, that explains a lot - I forgot to enable /W4 on the project where I test random code. –  Andrei Tita Dec 19 '12 at 19:43

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