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Why, in the following code, is sizeof(X) == 4 and sizeof(Y) == 8?

Moreover, in the class X, why do the member functions not take any memory space?

class X {
    int i;
public:
    X() { i = 0; }
    void set(int ii) { i = ii; }
    int read() const { return i; }
    int permute() { return i = i * 47; }
};

class Y : public X {
    int i; // Different from X's i
public:
    Y() { i = 0; }
    int change() {
        i = permute(); // Different name call
        return i;
    }
    void set(int ii) {
        i = ii;
        X::set(ii); // Same-name function call
    }
};


    cout << "sizeof(X) = " << sizeof(X) << endl;
    cout << "sizeof(Y) = " << sizeof(Y) << endl;
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5 Answers 5

up vote 2 down vote accepted

Objects of class Y have two integer members; objects of class X have one. Your comments express the fact that Y's i is different from X's i, so it looks like you already knew the answer.

See http://codepad.org/PZsiyFIk for an example of how an object of class Y actually has two i members.

Code repeated here:

#include <iostream>
using namespace std;

class X {
  int i;
public:
  X(): i(4) {}
  int getI() {return i;}
};

class Y: public X {
  int i;
public:
  Y(): i(10) {}
  int getMyI() {return i;}
};

int main() {
  Y y;
  cout << y.getI() << ' ' << y.getMyI() << '\n';
}

Outputs

4 10

There is only one object in main called y. Note that y must have two i fields for the output to make sense.

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I copy from a book's code. :)Now I know. but not very clear about how to use these two diff i. –  user1279988 Mar 27 '12 at 5:27
    
Added to my answer. Hope it helps. –  Ray Toal Mar 27 '12 at 5:28
    
I saw the code in codeepad. thanks for ur answer! –  user1279988 Mar 27 '12 at 5:32
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X is the base class. Has only one data member ie: int i. Y is derived from X and has its own and the derived data memebers. ie: two int is.

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Class Y has a two integer data members. Y's member i hides A's i (it would hide it anyway, even if i was a different type or even a method. So Y has two ints, hence the size. To get access to X's i from within Y you can simply qualify it with X's namespace, i.e. refer to it as X::i.

class Y : public X {
    int i; // Different from X's i
public:
   void foo() const {
      std::cout << X::i << std::endl;
   }
};
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Thank u , I have got it. –  user1279988 Mar 27 '12 at 8:48
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Moreover, in the class X, why do the member functions not take any memory space?

I think no one has covered this part yet. A class' member functions aren't stored within the object itself because they belong to the class, not the object. There's no reason to store a copy of the function within each objects, since the code always stays the same.

sizeof(X) returns the amount of bytes you need to store an instance of type X, not the entire class.

Furthermore a member function is stored like any other normal c function in memory. It just takes a pointer to the object it's called from:

int X::permute() { return i = i * 47; }
...
someX.permute();

Turns into:

int permute(X* _x) { return _x->i = _x->i * 47; }
...
permute(&someX);

The idea of member functions is only an abstraction for us to use. The only thing an objects actually consists of is member variables and maybe a virtual function table.

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Size of X is 4 because it has an int i

Size of Y is 8 because of base class i + derived class i

Member functions does not take size unless if you have a virtual function then for storing vpointer it will have 4 bytes.

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i know , thank u for ur answer. It has two i values –  user1279988 Mar 27 '12 at 5:26
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