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In my code i have encountered 37 errors of the same type c2678; binary 'operator' : no operator defined which takes a left-hand operand of type 'type' (or there is no acceptable conversion)

I am trying to remove the error by overloading the == operator, by including the STL "utility".

But still this doesnt works. Any help is appreciated.

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How including a header is supposed to overload operators for your type? – yuri kilochek Jul 27 '12 at 12:42
We need to at least see the code that is breaking. – BoBTFish Jul 27 '12 at 12:45
@yurikilochek: See <boost/operators.hpp>. – MSalters Jul 27 '12 at 13:56
@BoBTFish so? including this header doesn't magically provide overloads for your operators. You have to inherit from boost::operators<T>, and even then you have to provide basic ones so the others can be implemented in their terms. – yuri kilochek Jul 27 '12 at 14:02

1 Answer 1

That header provides overloads of operator== for some standard types, but it won't magically overload it for your own types. If you want your types to be equality-comparable, then you'll have to overload the operator yourself, for example:

bool operator==(my_type const & a, my_type const & b) {
    return a.something == b.something
        && a.something_else == b.something_else;

// You'll probably want this as well
bool operator!=(my_type const & a, my_type const & b) {
    return !(a == b);
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