Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I've been trying to create an hierarchy of classes, having each class contain a nested struct which contains data.

////////Class.h////////////////////////////
#ifndef _CLASS_H_
#define _CLASS_H_
#include <stdio.h>

class A{//Base
    protected:
    struct dataA{
        int v1, v2;
    };
    public:
    A();
    virtual void met1();
    dataA * const set;
    const dataA * const get;
};

class B : public A{//Child1
    protected:
    struct dataB : public dataA{
        int v3, v4;
    };
    public:
    B();
    virtual void met2();
    dataB * const set;
    const dataB * const get;    
};

class C : public B{//Child2
    struct dataC : public dataB{
        int v5, v6;
    };
    public:
    C();
    void met3();
    dataC * const set;
    const dataC * const get;
};
#endif
////////Class.cpp///////////////////////////
#include "Class.h"

A::A() : set( new dataA ), get( set ) {
    this->set->v1 = -1;
    this->set->v2 = -1;
}

void A::met1() {
    printf( "%i, %i", this->get->v1, this->get->v2 );//PRINTS "-1, -1"
}

B::B() : A(), set( new dataB ), get( set ) {
    this->set->v3 = -1;
    this->set->v4 = -1;
}

void B::met2() {
    printf( "%i, %i", this->get->v1, this->get->v2 );//An attempt to access C's "get" variable, PRINTS "-1, -1"
}

C::C() : B(), set( new dataC ), get( set ) {
    this->set->v5 = -1;
    this->set->v6 = -1;
}

void C::met3() {
    printf( "%i, %i", this->get->v1, this->get->v2 );//PRINTS "2, 3"
}
///////main.cpp////////////////////////////////
#include "Class.h"

int main() {
    C memb;
    memb.set->v1 = 2;
    memb.set->v2 = 3;
    printf( "%i, %i", memb.get->v1, memb.get->v2 );//PRINTS "2, 3"
    memb.met2();//PRINTS "-1, -1"
    return 0;
}

enter image description here So, what I've been trying to do is after declaring a member of type C, to access an inherited function from B which has access to C's data struct. A void pointer wouldn't do the job, as it cannot point to object types. I've tried passing the address of C to B, though, they are both different types. First off, if I access v1 from the main block, provided I've set a value to it, as shown in the example, I get a correct value- the value I've set. However, if I try to access the same variable, but from class B instead, it prints the value, as if it had not been set before, other than from the constructor. So I'm attempting to create a link from class B to class C's data struct - to class C's data parent- class B's data struct. The example code had not been compiled. Regards!

share|improve this question
    
Perhaps code that compiles might help. There is no such thing as a data member var1 in A::dataA, so the dereference this->get->var1 in the printf statement is not valid. It isn't the only problem (obviously). – WhozCraig Feb 22 '13 at 22:12
    
@WhozCraig I believe it should be fine now – user203432 Feb 22 '13 at 22:23
    
You do realize that your comments as to "prints -1, -1" and such are not correct, right? I'm slightly confused as to what you are trying to achieve, and what your actual question is. – Mats Petersson Feb 22 '13 at 22:25
    
I get what you're trying to do, but eventually I think you're going to come to realize that you need one integral data member that is of the most-derived dataX type that all containing object classes in your hierarchy reference. – WhozCraig Feb 22 '13 at 22:27
    
Perhaps pure virtuals? Seems doable, though, how will I parse them all down to a single type? – user203432 Feb 22 '13 at 22:30
up vote 2 down vote accepted

I'm pretty sure this is close to what you want, though I have to tell you I need to shower after writing it. There are a ton of things in this I would NOT do, but...

#include <cstdio>
#include <cstdlib>
using namespace std;

class A{//Base
protected:
    struct dataA
    {
        int v1, v2;
    }  * const data;

    A(dataA* const p)
        : data(p)
    {
        p->v1=-1;
        p->v2=-1;
    };

public:
    virtual void met1()
    {
        printf( "%i, %i", get()->v1, get()->v2 );
    }

    const dataA * const get() const { return data; }
    dataA * const set() const { return data; }
};

class B : public A {//Child1
protected:
    struct dataB : public dataA
    {
        int v3, v4;
    } * const data;

    // protected constructor
    B(dataB * const p)
        : A(p), data(p)
    {
        p->v3 = 0;
        p->v4 = 0;
    };

public:
    virtual void met2()
    {
        printf( "%i, %i, %i, %i", get()->v1, get()->v2, get()->v3, get()->v4);
    }

    const dataB * const get() const { return data; }
    dataB * const set() const { return data; }
};

class C : public B
{
    struct dataC : public dataB
    {
        int v5, v6;
    } * const data;

public:
    C() : B(new dataC),
    data(static_cast<dataC*>(B::data))
    {
        data->v5 = 0;
        data->v6 = 0;
    };

    ~C()
    {
        // note, the pointers in B and A are left
        //  dangling after this is done.
        delete data;
    }

    virtual void met2()
    {
        printf( "%i, %i, %i, %i, %i, %i",
               get()->v1, get()->v2,
               get()->v3, get()->v4,
               get()->v5, get()->v6);
    }

    const dataC * const get() const { return data; }
    dataC * const set() const { return data; }
};


///////main.cpp////////////////////////////////

int main() {
    C memb;
    memb.set()->v1 = 2;
    memb.set()->v2 = 3;
    printf( "%i, %i\n", memb.get()->v1, memb.get()->v2 );
    memb.met2();
    return 0;
}

Output

2, 3
2, 3, 0, 0, 0, 0

Update

OP wanted to see this without the get() and set() members using just member variables. Again, just hideous, but here you go:

#include <cstdio>
#include <cstddef>

class A{//Base
protected:
    struct dataA
    {
        int v1, v2;
    };
    dataA * const set;
    const dataA * const get;

    A(dataA* const p)
        : get(p), set(p)
    {
        p->v1=-1;
        p->v2=-1;
    };

public:
    virtual void met1()
    {
        printf( "%i, %i\n", get->v1, get->v2 );
    }
};

class B : public A {//Child1
protected:
    struct dataB : public dataA
    {
        int v3, v4;
    };
    dataB * const set;
    const dataB *const get;


    // protected constructor
    B(dataB * const p)
        : A(p), set(p), get(p)
    {
        p->v3 = 0;
        p->v4 = 0;
    };

public:
    virtual void met2()
    {
        printf( "%i, %i, %i, %i\n", get->v1, get->v2, get->v3, get->v4);
    }
};

class C : public B
{
    struct dataC : public dataB
    {
        int v5, v6;
    };
public:
    dataC * const set;
    const dataC * const get;

    C() : B(new dataC),
        set(static_cast<dataC *const>(B::set)),
        get(static_cast<const dataC *const>(B::get))
    {
        set->v5 = 0;
        set->v6 = 0;
    }

    ~C()
    {
        // note, the pointers in B and A are left
        //  dangling after this is done.
        delete set;
    }

    virtual void met2()
    {
        printf( "%i, %i, %i, %i, %i, %i\n",
               get->v1, get->v2,
               get->v3, get->v4,
               get->v5, get->v6);
    }
};


///////main.cpp////////////////////////////////

int main() {
    C memb;

    memb.set->v1 = 2;
    memb.set->v2 = 3;

    printf( "%i, %i\n", memb.get->v1, memb.get->v2 );
    memb.met2();

    B& obj = memb;
    obj.met1();
    obj.met2();

    return 0;
}

Output

2, 3
2, 3, 0, 0, 0, 0
2, 3
2, 3, 0, 0, 0, 0
share|improve this answer
    
Greatly appreciated! Though, is there a way to simplify the syntax and use set and get as variables? – user203432 Feb 22 '13 at 23:08
1  
@user203432 yes, but it would be even more horrid. – WhozCraig Feb 22 '13 at 23:10
    
Agh, alright then, thanks anyways, guess this will do. This little detail has been holding me back maybe for a week or two now, glad it's partly over :) – user203432 Feb 22 '13 at 23:12
    
You deserve a medal :P I'm so relieved! Thanks for the var version as well! It ain't so bad - not bad at all! Take care! :) – user203432 Feb 23 '13 at 11:04

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.