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I have a question about pointer to a object in C++.
For example, if we have a CRectangle class and there is a y variable in it.

CRectangle *x = new CRectangle;

x->y means member y of object pointed by x, what about (*x).y? are they the same?

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3 Answers 3

up vote 4 down vote accepted

Yes, x->y and (*x).y are exactly the same in your example. The -> means dereference X, and *x means exactly the same.

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Alexander Gessier's answer contains a valid point: as long as your CRectangle class didn't overload operator-> and operator* to do something unexpected. –  Stéphane May 5 '11 at 9:34
4  
No, you can't overload operator* to behave differently for CRectangle *. –  usta May 5 '11 at 9:38

Yes, (*x).y is equivalent to x->y if x is of a pointer type.

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Yes. You can see it by yourself with this sample program:

#include <iostream>
using namespace std;

class CRectangle {
    int width, height;
    public:
    void set_values (int, int);
    int area (void) {return (width * height);}
};

void CRectangle::set_values (int a, int b) {
    width = a;
    height = b;
}

int main () {
    CRectangle r1, *r2;
    r2= new CRectangle;
    r1.set_values (1,2);
    r2->set_values (3,4);
    cout << "r1.area(): " << r1.area() << endl;
    cout << "r2->area(): " << r2->area() << endl;
    cout << "(*r2).area(): " << (*r2).area() << endl;

    delete r2;
    return 0;
}
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