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I'm trying to typedef the return type of a member function of a template argument. So something like this:

template <typename T>
class DoSomething{
    typedef return_type (T::*x)(void)const data_type;
    data_type x1;

In this case, I want to typedef the return type of a const member function of the template parameter, called x. In this example return_type is just a place holder, just to show what I want. It won't compile.

EDIT: The reason I want it this way is: I want to do the operations on x1 or any other variable of type data_type in this example, with the same precision as the return type of the x() member function. So if x() returns a float all my template ops will be in floats and so on.

I found one answer on SO. But I don't want to use any C++11 features. So no decltype, no auto. Just something that will work with a C++03 compiler.

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It's not clear what you're trying to do. Are return_type, x, or data_type declared anywhere previously? Can you show an example use of x1? –  aschepler Jun 8 '14 at 6:02
Many compilers have the compiler specific extension typeof that more or less does the same as decltype. Also C++11 solves so many problems, preferring to hack around problems instead of just using the standard solution is ridiculous. –  nwp Jun 8 '14 at 6:13
@nwp It's likely not about personal preference, but about external constraints one cannot affect. Please learn to distinguish the two before disrespecting others and making this site a less pleasant place to read. –  user4815162342 Jun 8 '14 at 6:33
@user4815162342 It says "I don't want to use any C++11 features" in the question. What I meant to say is that it is worth reconsidering that opinion. "I am not allowed to use any C++11 features" is a totally different matter. –  nwp Jun 8 '14 at 7:35

3 Answers 3

up vote 2 down vote accepted

This seems to work (even when Boost Typeof is forced to use the long way rather than any C++11 or compiler-specific feature):

#include <boost/utility/declval.hpp>
#include <boost/typeof/typeof.hpp>

template <typename T>
class DoSomething {
    typedef BOOST_TYPEOF_TPL(boost::declval<T const&>().x()) data_type;
    data_type x1;

But the resulting type cannot involve any class, struct, union, or enum types.

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Thank you. That worked perfect! –  Arun R Jun 8 '14 at 19:58

The easiest way to do this may be boost's typeof, which operates like decltype, but works in C++03.

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The core idea of the typedef is the following:

typedef known_type [<modifiers>] new_type;

In this case known_type should be already defined and known. Dot. There is not other way. Based on this known existing type you can define a new type.

Start thinking from this.

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