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In the following function I am looking for an expression to replace isIntegral<T>.

The intention is that when T is an integral type we add 0.5f before static_cast implictly floors the value (and so we obtain a rounded value), but when T is a fractional type we add nothing, and so the static_cast can only reduce the precision.

T interpolate( T const & prev, T const & next, float interpolation )
{
    float prevFloat = static_cast< float >( prev );
    float nextFloat = static_cast< float >( next );

    float result = prevFloat + ( (nextFloat-prevFloat) * interpolation );

    return static_cast< T >( result + ( isIntegral<T> ? 0.5f : 0.0f );
}
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4 Answers 4

up vote 9 down vote accepted

Use std::numeric_limits<T>::is_integer (it's in the <limits> header).

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Damn, I knew there was something, somewhere, cheers :) –  dukedave Nov 17 '10 at 22:55

Why not just declare const float addend = 0.5f - static_cast<T>(0.5f)

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+1 for the "outside the box" answer –  dukedave Nov 17 '10 at 22:56
std::is_integral<T>::value

If you include <type_traits>, most compilers support this now.

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This should be possible (without any runtime overhead) with some Boost magic (not tested):

#include <boost/type_traits/is_integral.hpp>
#include <boost/utility/enable_if.hpp>
template<typename T>
typename boost::enable_if<boost::is_integral<T>, T>::type
interpolate(const T& prev, const T& next, float interpolation) {
    // code for the case that T is an integral type
}
template<typename T>
typename boost::disable_if<boost::is_integral<T>, T>::type
interpolate(const T& prev, const T& next, float interpolation) {
    // code for the case that T is not an integral type
}
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2  
In practice, the compiler should optimise the ternary expression (in the OP's code) away to nothing via constant-folding. –  Oliver Charlesworth Nov 16 '10 at 17:42
    
Correct, using enable_if is probably overhead here. It is nevertheless useful if the codes for different types vastly differ. –  Philipp Nov 16 '10 at 17:45

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