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I have overloaded both the + and += operator, with the following signatures:

// within A's header file..
A operator+(const B &p);    
A &operator+=(B &p);

Why is it that when I try to use the += operator, I get the compiler error message

Invalid operands of types "A*" and "B*" to binary 'operator+'.

an_a; // an instance of class A
B *a_b = new B(some_parameters);
an_a += a_b;
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2 Answers 2

You overloaded the operator for B&. You're trying to pass it a pointer, not an instance of B or reference to B. The following should compile: an_a += *a_b;, although a more likely fix is:

A an_a(some parameters);
B a_b(some parameters);
an_a += a_b;

Also beware that dynamic allocation and arithmetic operator overloading don't play especially nicely together. If it's only the inputs that are dynamically allocated it's probably fine. Just don't try to allocate the result with new and return it as a pointer, or you'll find that in order to avoid memory leaks the calling code can't use any of the simple expressions that were the reason you wanted operator overloading in the first place.

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Even dereferencing it (an_a += (*a_b)) is an error, though –  headch Feb 25 '11 at 19:47
1  
Ah, sorry, I missed that your reported error message disagrees with your code snippet. The comment in the code claims that an_a is an instance of class A, but the error messages claims that it isn't, it's a pointer. You can't overload operator+= for pointers on both sides, so if both operands are pointers then I think p1 += p2 always just means p1 = p1 + p2. –  Steve Jessop Feb 25 '11 at 19:49
    
... or anyway, neither p1 += p2 not p1 = p1 + p2 is valid, and you can't make them valid with operator overloads. I don't know why the compiler complains in this particular way, though, rather than complaining about the failed match with operator+=. –  Steve Jessop Feb 25 '11 at 20:01
    
if an_a is a pointer, you can try dereferencing both: *an_a += *a_b; –  Tim Feb 25 '11 at 20:02

Your error message is inconsistent with the comments in your code. It looks like both an_a and a_b are pointers, so you have to dereference them to use operators: *an_a += *a_b;.

Also note that your operator+= takes B by non-const reference. If you're changing the right-hand argument to that operator someone is going to be very surprised and unhappy sometime. Make it const reference instead.

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"very surprised and unhappy ", good catch, and for the same reason operator+ should take a const LHS. So if it's defined as a member function, A operator+(const B&) const; –  Steve Jessop Feb 25 '11 at 19:58

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