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Purpose and craziness aside, is there a way to achieve this in C++?

template <typename P>
void Q void_cast(P Q *p) const
{
    return static_cast<P Q *>(p);
}

I'm effectively trying to cast a pointer to a void pointer type whilst keeping any const, restrict and other qualifiers (denoted by Q).

I was under the impression there was stuff in the C++ standard library (or less desirably, in Boost), that allowed you to "tweak" properties of types, with finer granularity than say const_cast or static_cast.

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2  
Remember templates aren't merely textual substitution; some template parameter T could be int[3] and function parameter T &param would be a reference to an array. – Roger Pate Oct 6 '10 at 9:54
up vote 7 down vote accepted

So, you want const X* -> const void*, volatile X* -> volatile void*, etc.

You can do this with a set of overloads:

template<typename P>
void* void_cast(P* p)
{
    return p;
}

template<typename P>
void const* void_cast(P const* p)
{
    return p;
}

template<typename P>
void volatile* void_cast(P volatile* p)
{
    return p;
}

template<typename P>
void const volatile* void_cast(P const volatile* p)
{
    return p;
}

The new type traits are things like add_const, add_volatile, remove_const and remove_volatile. They work for transforming the cv-qualifiers of a type in a known way, not for applying the cv-qualifiers of one type to another.

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You've identified precisely what I'm after, and explained how type traits relate to it. I'm still hopeful there is a less verbose way to achieve this. – Matt Joiner Oct 4 '10 at 13:03
3  
@Matt: The only less verbose way is probably not to use a cast at all, because you can't capture the cv-qualifiers in a separate template parameter. Conversion to suitably qualified void pointer happens implicitly, and only a C-cast can remove the qualifiers. – visitor Oct 4 '10 at 13:09
2  
Ultimately, I think these don't need to be templates. void const* void_cast(void const* v) { return v; } and friends are enough, I believe. – Johannes Schaub - litb Oct 4 '10 at 13:57
    
Possibly. The templates require a pointer, and won't work with a class that is implicitly convertible to a pointer unless you specify the pointer type (e.g. void_cast<Y>(x)) or cast the type to a pointer first (e.g. void_cast((Y*)x)), whereas plain functions will accept implicit conversions to the parameter type. – Anthony Williams Oct 4 '10 at 14:10
3  
In C++, a T* will implicitly convert to a void*, but not the other way round. cv-qualifiers must be preserved, so a const T* will implicitly convert to a const void*, but not to a void*. – Anthony Williams Oct 4 '10 at 15:06

In the boost type traits lib are some tools to remove qulifiers

http://www.boost.org/doc/libs/1_44_0/libs/type_traits/doc/html/index.html

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template<class From>
typename copy_rpcv<void, From*>::type void_cast(From *p) {
  return p;  // implicit conversion works
}

With a little TMP utility:

// "copy ref/pointer/const/volatile"
template<class To, class From>
struct copy_rpcv {
  typedef To type;
};
template<class To, class From> struct copy_rpcv<To, From&        > { typedef typename copy_rpcv<To, From>::type&         type; };
template<class To, class From> struct copy_rpcv<To, From*        > { typedef typename copy_rpcv<To, From>::type*         type; };
template<class To, class From> struct copy_rpcv<To, From const   > { typedef typename copy_rpcv<To, From>::type const    type; };
template<class To, class From> struct copy_rpcv<To, From volatile> { typedef typename copy_rpcv<To, From>::type volatile type; };

You'd have to add another case for the restrict specifier; it probably would work just fine, but I don't know how it, as a non-standard feature in 03 (is it in 0x?), interacts:

template<class To, class From> struct copy_rpcv<To, From* restrict> { typedef typename copy_rpcv<To, From>::type* restrict type; };

My solution differs from Anthony's in preserving "nested" type info:

int *const *const p = 0;
void *const *const v = void_cast(p);
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