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If i have a pointer to an object that has an overloaded subscript operator ( [] ) why cant i do this:

 MyClass *a = new MyClass();
 a[1];

but have to do this instead:

 MyClass *a = new MyClass();
 (*a)[1];
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4  
You could also do a[0][1] ;-) –  FredOverflow May 11 '10 at 6:26

3 Answers 3

up vote 12 down vote accepted

It's because you can't overload operators for a pointer type; you can only overload an operator where at least one of the parameters (operands) is of class type or enumeration type.

Thus, if you have a pointer to an object of some class type that overloads the subscript operator, you have to dereference that pointer in order to call its overloaded subscript operator.

In your example, a has type MyClass*; this is a pointer type, so the built-in operator[] for pointers is used. When you dereference the pointer and obtain a MyClass, you have a class-type object, so the overloaded operator[] is used.

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Just like -> and . are differentiated. –  earlNameless May 11 '10 at 4:22

Simply put, with a[1] the a pointer is treated as memory containing array, and you're trying to access the 2nd element in the array (which doesn't exist).

The (*a)[1] forces to first get the actual object at the pointer location, (*a), and then call the [] operator on it.

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Because a is type pointer to a MyClass and not a MyClass. Changing the language to support your desired use would make many other language semantics break.

You can get the syntactic result you want from:

struct foo {
    int a[10];
    int& operator [](int i) { return a[i]; }
};

main() {
    foo *a = new foo();
    foo &b = *a;
    b[2] = 3;
}
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