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Given two numeric types From and To. Does the following code actually determine whether or not any value of type From can be represented as a value of type To without losing information? If yes, is there a shorter or more readable way of determining?

template <class From, class To>
struct can_cast
{
    static const bool value = 
        (std::numeric_limits<From>::is_integer || // either From is an integer type OR 
        std::is_floating_point<To>::value) && // ...they're both floating point types AND
        (std::numeric_limits<From>::is_signed == false || // either From is unsigned OR
        std::numeric_limits<To>::is_signed == true) && // ...they're both signed AND
        (std::numeric_limits<From>::digits < std::numeric_limits<To>::digits || // To has more bits for digits than From OR
        std::numeric_limits<From>::digits == std::numeric_limits<To>::digits && // To and From have same number of bits, but
        std::numeric_limits<From>::is_signed == std::numeric_limits<To>::is_signed); // they're either both signed or both unsigned.
};
share|improve this question

The compiler has this feature built-in now: narrowing conversions are not allowed when using list-initialisation.

You can write a traditional expression tester trait based off of To { std::declval<From>() } and possibly add additional checks with std::is_integral and std::is_floating_point.

template <typename T>
struct sfinae_true : std::true_type {};

struct can_cast_tester {
   template <typename From, typename To>
   sfinae_true<decltype(To { std::declval<From>() })> static test(int);
   template <typename...>
   std::false_type static test(...);
}; 

template <typename From, typename To>
struct can_cast // terrible name
: decltype(can_cast_tester::test<From, To>(0)) {};

Theoretically, this should work, but currently it seems neither GCC nor clang get it right.

share|improve this answer
    
nor does msvc 2010. – Alexander Tobias Heinrich Sep 24 '12 at 15:18
2  
Well, if you try int x{1.5}; in gcc-4.7.1 it only reports a warning, not an error as it should. – Maxim Egorushkin Sep 24 '12 at 15:26
    
@MaximYegorushkin Debatable. The Standard only cares about 'diagnostics' and a GCC user can decide to turn those warnings into errors if they so desire. The GCC documentation for e.g. -pedantic mentions: "Issue all the warnings demanded by strict ISO C and ISO C++". At worst it's a GCC usability/consistency issue, and more of a bikeshed really. – Luc Danton Sep 24 '12 at 15:42
    
@Maxim: With -Wnarrowing you get an error, atleast on LWS I do. – Xeo Sep 24 '12 at 15:43
    
@Xeo: -Wnarrowing just enables the warning, you probably meant -Werror=narrowing to turn it into an error. – Maxim Egorushkin Sep 24 '12 at 15:52

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