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Suppose I have two base class with a bunch of typedefs:

struct X {
  typedef int type1;
  typedef float type2;
  // A bunch of other typedefs.
};

struct Y {
  typedef long type1;
  typedef char type3;
  // Some other typedefs.
};

struct Z : public X, public Y {
};

How do I specify I want to let Z inherit all typedefs from X, without manually resolving conflicts for each type? I mean O(1) code to achieve this instead of O(n), where n is the number of conflict types. Also in the case of meta programing, one wouldn't know the exact typedefs in X and Y, so manual resolving conflict is not possible.

Under the case of single inheritance, it will automatically use the base class's typedef so I don't need to manually specify them.

share|improve this question
    
Why not put all the types you need in a header file? – Hunter McMillen Dec 14 '11 at 0:02

Uhm, it works just fine. You only need to resolve the collisions.

struct X
{
    typedef int type1;
    typedef int type2;
};

struct Y
{
    typedef double type1;
};

struct Z : public X, public Y 
{
    type2 z1;
    typedef X::type1 type1;
    type1 z2;
};

int main()
{
    Z z;
    Z::type2 x;
    Z::type1 y;
}
share|improve this answer
    
Your answer works but requires manual work to resolve conflicts. I updated my question to make it clear what I am looking for. Thanks for your answer anyway. – icando Dec 14 '11 at 20:36
1  
@icando That can't be done. You need to manually resolve conflicts. – Let_Me_Be Dec 14 '11 at 20:52

Use private or protected inheritance instead of public inheritance, and then use using statement to declare the items you want to use in Z, eg:

struct Z : protected X, protected Y
{ 
    using X::type1;
    using X::type2;
    // ...
}; 
share|improve this answer
    
GCC seems to be confused. – Let_Me_Be Dec 14 '11 at 0:12

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