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I'm making a cross-platform library implementing several basic primitives on several platforms. To verify that every implementation of a primitive (i.e. class) provides core members required on all platforms I use the following construct:

template<typename _Ty> int _MethodVerifyHelper(_Ty);
#define ENSURE_MEMBER_DECL(className, methodName, returnType, ...) typedef char __PROTOTYPE_VERIFIER__[sizeof(_MethodVerifyHelper<returnType (className::*)(__VA_ARGS__)>(&className::methodName))]

Then I write something like this:

ENSURE_MEMBER_DECL(Event, TryWait, bool, unsigned);

So if the Event class has no bool TryWait(unsigned) method, we'll get a compilation error here.

The question is: is there a similar syntax in C++ to declare pointers to constructors? I want to have a statement that causes a compile-time error if a class does not provide a constructor with given argument types.

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possible duplicate of Check at compile time class constructor signature –  Björn Pollex Aug 1 '12 at 10:22
    
Off-topic, but you shouldn't use reserved names like _Ty and _MethodVerifyHelper. –  Mike Seymour Aug 1 '12 at 10:58

2 Answers 2

up vote 9 down vote accepted

There's no way you can take the address of a constructor, but you can easily get a compile time error if an object can't be constructed with a given set of arguments:

typedef int dummyToTriggerError[ sizeof( T( arg1, arg2, arg3 ) ) ];

The essential part is, of course, the sizeof expression, which contains a construction of the object which will never be evaluated, but which must be legal. It's wrapped in a typedef to ensure that it won't generate any code, ever.

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No, you cannot take a pointer to a constructor.

The way to ensure a particular constructor is provided would be to simulate a call to the constructor inside a non-execution context (e.g. sizeof):

static_assert(sizeof(className(std::declval<arg1_type>(), std::declval<arg2_type>())) > 0, "");
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