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I was playing around with an adapter for using range-based for-loops to iterate in reverse. (I did not know about the boost adapter ("adaptor") for that purpose. I am a big believer in not re-inventing the wheel if it's a free wheel I have already downloaded.)

What puzzles me is why VC++ 2012 is not happy unless I use trailing return-types in the code that follows:

#include <string>
#include <iostream>

template<class Fwd>
struct Reverser {
    const Fwd &fwd;
    Reverser<Fwd>(const Fwd &fwd_): fwd(fwd_) {}
    auto begin() -> decltype(fwd.rbegin()) const { return fwd.rbegin(); } 
    auto end() ->   decltype(fwd.rend())   const { return fwd.rend(); } 
};

template<class Fwd>
Reverser<Fwd> reverse(const Fwd &fwd) { return Reverser<Fwd>(fwd); }

int main() {
    using namespace std;
    const string str = ".dlrow olleH";
    for(char c: reverse(str)) cout << c;
    cout << endl;
}

When I tried the following, I got the errors, "error C2100: illegal indirection," and "error C2228: left of '.rbegin' must have class/struct/union". What am I missing?

template<class Fwd>
struct Reverser {
    const Fwd &fwd;
    Reverser<Fwd>(const Fwd &fwd_): fwd(fwd_) {}
    decltype(fwd.rbegin()) begin() const { return fwd.rbegin(); } 
    decltype(fwd.rend())   end() const { return fwd.rend(); } 
};

UPDATE: In light of the discussion about a "this" pointer, I tried another tack. Look Ma, no this! And it compiles fine. I do believe that, rightly or wrongly, VC++ is not aware of that this.

template<class Fwd>
struct Reverser {
    const Fwd &fwd;
    Reverser<Fwd>(const Fwd &fwd_): fwd(fwd_) {}
    decltype(((const Fwd*)0)->rbegin()) begin() const { return fwd.rbegin(); } 
    decltype(((const Fwd*)0)->rend())   end()   const { return fwd.rend(); } 

};

UPDATE 2: Submitted to MS: https://connect.microsoft.com/VisualStudio/feedback/details/765455/vc-2012-compiler-refuses-decltype-return-spec-for-member-function

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2  
VC++ bug......? –  Karoly Horvath Sep 29 '12 at 21:23
    
i'm not sure it has anything to do with it, but where is the return statement in you'er main function? –  user1708860 Sep 29 '12 at 21:26
8  
No return statement is required. I checked with my language lawyer. –  Jive Dadson Sep 29 '12 at 21:27
    
Does it make a difference if you replace the const reference with a pointer? –  jdv-Jan de Vaan Sep 29 '12 at 21:32
    
@jdv I think I remember trying that, and it did not work either. –  Jive Dadson Sep 29 '12 at 21:35
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1 Answer

up vote 5 down vote accepted

My original answer that the code that VC++ rejected is disallowed in the standard actually was wrong: It is allowed as Johannes Schaub pointed out: in 5.1 [expr.prim.general] paragraph 12 it is described where an id-expression denoting a non-static data member or a non-static member function can be used. In particular, the last bullet states:

if that id-expression denotes a non-static data member and it appears in an unevaluated operand.

The expression in decltype(expr) is an unevaluated operand. Furthermore, 9.3.1 [class.mfct.non-static] paragraph 3 explains the situation where this is implicitly added to an expression:

When an id-expression (5.1) that is not part of a class member access syntax (5.2.5) and not used to form a pointer to member (5.3.1) is used in a member of class X in a context where this can be used (5.1.1), if name lookup (3.4) resolves the name in the id-expression to a non-static non-type member of some class C, and if either the id-expression is potentially evaluated or C is X or a base class of X, the id-expression is transformed into a class member access expression (5.2.5) using (*this) (9.3.2) as the postfix-expression to the left of the . operator.

The context in question is not "potentially evaluated" and there is no based involved. Thus, this isn't added and doesn't have to be in scope. Taken together, this means that the declaration

decltype(fwd.rbegin()) begin() const;

should be legal. It seems that using

decltype(static_cast<Reverser<Fwd> const*>(0)->fwd.rbegin()) begin() const;

is a work-around in cases where the compiler isn't correctly implemented.

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fwd is in scope even outside the function definition. Other C++11 compilers handle this just fine. I'd have to look closer at the standard, but I think this is just a VC++ bug. –  bames53 Sep 29 '12 at 21:56
    
I'm pretty sure that VC++ is correct on this an the other compilers are wrong! What is the syntax of the out-of-line definition of begin() if the decltype() is not trailing? –  Dietmar Kühl Sep 29 '12 at 22:04
    
In a conforming C++ implementation, his code is valid. There will be no this added, and consequently there will be no const/volatile modification added by a const/volatile member function, but that's irrelevant here. See open-std.org/jtc1/sc22/wg21/docs/cwg_defects.html#1207 –  Johannes Schaub - litb Sep 29 '12 at 22:17
    
FWIW, g++ 4.7.0 compiles both of them, but if the definition of fwd is moved to the end of the struct, where many of us might put it, it won't compile either of them (which is probably a bug). –  rici Sep 29 '12 at 22:19
    
@DietmarKühl it is perfectly legal in C++11 to say decltype(Reverser<Fwd>::fwd.rbegin()) in an out of line definition - in an unevaluated operand you don't need an object to access a non-static data member. –  Johannes Schaub - litb Sep 29 '12 at 22:26
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