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Is there a way to get this code work, just like it does when calling a static function with the dot notation?

struct A{
    static void f(){ }
    typedef int t;
};

template<typename T> void f(){}

int main(){
    A a;
    a.f();          //legit
    f<a.t>();       //‘a’ cannot appear in a constant-expression, ‘.’ cannot appear in a constant-expression
    a.t somevar;    //invalid use of ‘A::t’
    f<a::t>();      //‘a’ cannot appear in a constant-expression
    a::t somevar;   //‘a’ is not a class, namespace, or enumeration
}

EDIT: Guys, please read the question and test your code before posting. The point here is NOT to use A::t but "invoke" t through an instance of A, like you can do with static methods.

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1  
How in the world do you "invoke" a typedef??? –  dasblinkenlight Apr 14 '12 at 21:11
1  
t is a type, not a variable. –  Jesse Good Apr 14 '12 at 21:12
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4 Answers

up vote 6 down vote accepted

You have to use A::t instead of a.t because the typedef is like static and a is an instance of A.


EDIT: In contrast to what I said above, it is not always "like static". For static members, there is this special rule:

A static member s of class X may be referred to using the qualified-id expression X::s; it is not necessary to use the class member access syntax (5.2.5) to refer to a static member. A static member may be referred to using the class member access syntax, in which case the object expression is evaluated. [ Example:

struct process {
  static void reschedule();
};
process& g();

void f() {
  process::reschedule(); // OK: no object necessary
  g().reschedule();      // g() is called
}

Since a typedef is not a static member, this syntax is invalid.

Given the instance a and not this syntactic sugar, the only way to get t is to get the type of it. C++11 gives us a tool for that:

typedef decltype(a) a_type;
f<a_type::t>();
a_type::t somevar;

However, I see no practical use of it (ok, maybe in macros, but everyone knows that templates are better).

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What do you mean the typedef is static? –  Luchian Grigore Apr 14 '12 at 21:00
    
You can not have a static typedef in a class. –  josephthomas Apr 14 '12 at 21:02
    
It behaves like static –  glitto Apr 14 '12 at 21:02
2  
It's funny how he never said "static typedef" but everyone insist on saying "hey, static typedefs do not exist". –  mfontanini Apr 14 '12 at 21:15
1  
I didn't saw your answer while editing (don't know why stackoverflow hides all other answers on editing). I'm really sorry for that, @BertR. –  glitto Apr 14 '12 at 21:49
show 9 more comments

You need to use scope resolution operator (and return int value from main):

int main()
{
    A a;
    A::t somevar = 0;
    return 0;    
}

Note that type alias introduced with typedef must be publicly visible if you want to use it outside the class. If you had:

class A
{
    static void f(){}
    typedef int t;
};

Then using A::t like in the above example would yield compiler error ("cannot access private typedef..."). You would need to use public accessor specifier:

class A
{
    static void f(){}
public:
    typedef int t;
};
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The first part was already said by 2 previous answers some time ago, the second part is wrong. You should return int from main, but you don't need to. –  Luchian Grigore Apr 14 '12 at 21:07
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You can do it like this:

typedef decltype (a) AT;
typedef AT::t T;
f<T>();
T somevar;

decltype is specific for C++11

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You will need to use the scope resolution operator, so the could would need to be

f<A::t>();
A::t somevar;

For more information on the scope resolution operator, take a look at C++ Scope Resolution Operator ::.

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