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Today I checked out Stroustrup's C++11 FAQ (modified April 7, 2013) and saw this at the end of the type-alias section:

typedef void (*PFD)(double);    // C style
using PF = void (*)(double);    // using plus C-style type
using P = [](double)->void;     // using plus suffix return type

where a lambda introducer is used to start a general function type expression that uses a suffix-style return type. Is this official, or a dropped beta/wish-list feature? If it's official, how would it work for non-static member functions?

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using P = [](double)->void;

is not official. Bjarne is known to be a bit careless in his FAQs.

What does work, however, are the following:

using P1 = auto(double) -> void;
using P2 = auto(*)(double) -> void;

Where P1 is a function type, and P2 is a function-pointer type. Maybe that was his intention.

  • So Bjarne's third entry is exploiting the stateless-lambda=to=regular-function conversion, right? Right before reading this, I experimented and found that "auto (MyClass::*)(Whatever) CV -> ReturnType" works. – CTMacUser Apr 30 '13 at 6:47
  • @CTMacUser: No it doesn't. using expects a type, [](stuff)->stuff is an incomplete lambda object. And yes, that's the syntax, just like a normal member-function-pointer, except with a trailing return type. – Xeo Apr 30 '13 at 7:09
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Lambda syntax wont work with non-static member functions because pointer-to-function and pointer-to-member-function are differently implemented. Pointer-to-member function is not regular pointer. It doesn't hold the "exact address" like a regular pointer does. We can imagine it holds the "relative address" of where the function is in the class layout.

If you need to pass pointer to member function somewhere, cosider std::function usage.

  • Oh, I was asking this question for looks, not usage. The answer by @Xeo gave me what I needed. – CTMacUser Apr 30 '13 at 6:49

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