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I have a class that holds an array of integers and to get a reference of this array the subscript operator [] is overloaded (this is a stripped down example with logic checks etc removed):

class Foo {
public:

Foo() {};

// and overload the [] operator
int& operator[](const int index);

private:
const int LEN = 7;
int arr[LEN];
};

int& Foo::operator[](const int index) {
    return arr[index];
}

A pointer of an instance of such class (named boo) is passed to a function. Now what I want to do is:

int val = boo[0];

but it fails "error: invalid cast from type ‘Foo’ to type ‘int’".

My first idea was that Im passing a pointer to a class and I should bring a copy of the instance into scope and use that copy instead. This works. But Im curious if it would be possible to use the user defined type as a true built in type? Should I use a wrapper?

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It looks like you've got two separate accounts (this one and that one), which means you cannot edit your original post or leave comments. The StackExchange staff can merge them together for you. – Jubobs Dec 31 '14 at 15:26
up vote 3 down vote accepted

Because the overloaded operator is defined for objects, not pointers to objects. There's two options:

int val = boo->operator[](0);

or

int val = (*boo)[0];

Or you can pass the object (by value or reference) instead of a pointer to it.

Your case is equivalent to:

Boo* b = ....;
b[0];           //this returns a Boo object

as opposed to:

Boo b;
b[0];           //calls operator[]
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+1 for explaining why – Caribou Oct 29 '12 at 12:17

You need to either use :

boo->operator[] ( 0 );

or

(*boo)[0];

I.E. dereference the pointer to the object boo.

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