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I'm sure that boost has some functions for doing this, but I don't know the relevant libraries well enough. I have a template class, which is pretty basic, except for one twist where I need to define a conditional type. Here is the psuedo code for what I want

struct PlaceHolder {};
    template <typename T>
class C{
    typedef (T == PlaceHolder ? void : T) usefulType;

How do I write that type conditional?

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Interesting. Under what circumstance would this be useful? Can you provide an example. – Stephen Jun 9 '10 at 17:53
Here was my example. For one the template arguments, say TYPE, having value PlaceHolder means "turn off some feature". There are a set of callbacks that have return type TYPE* that the natural meaning of turning off the feature is for the callbacks to have return type void. usefulType is the return value for the callbacks. – pythonic metaphor Jun 9 '10 at 19:18
@pythonicmetaphor could you please change the accepted answer? Times are different now. – Ven Nov 17 at 11:09

3 Answers 3

up vote 6 down vote accepted

Also with the new standard:

typedef typename std::conditional<std::is_same<T, PlaceHolder>::value, void, T>::type usefulType

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This should be the accepted asnwer. – Violet Giraffe Oct 30 '14 at 10:58
template < typename T >
struct my_mfun : boost::mpl::if_
, void
, T
> {};

template < typename T >
struct C { typedef typename my_mfun<T>::type usefulType; };
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Code should be prefixed by 4 spaces. You can select text and click the 101010 button to do it in bulk. – GManNickG Jun 9 '10 at 18:43
Thanks, but please don't alter my answers. – Crazy Eddie Jun 9 '10 at 18:50
See the FAQ: "If you are not comfortable with the idea of your questions and answers being edited by other trusted users, this may not be the site for you." – Bill Jun 9 '10 at 18:55

I think this is the principle you're after:

template< class T >
struct DefineMyTpe
  typedef T usefulType;

struct DefineMyType< PlaceHolder >
  typedef void usefulType;

template< class T > 
class C
  typedef typename DefineMyType< T >::usefulType usefulType;
share|improve this answer
This should not be the accepted answer in 2015. – Ven Nov 17 at 10:55
It shouldn't, but I cannot change it.. Just upvote the one using std::conditional, any SO user will probably be smart enough to consider the most upvoted answer. – stijn Nov 17 at 10:58
Please add a "see the later answer by @rafak" or something, so that people know to look it up upfront. – Ven Nov 17 at 11:10

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