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To prepare a struct to be used in an unordered_set, a hashing function is required. This can either be accomplished by overloading operator size_t() (ew) or annoyingly making something like this:

namespace std
{
 template<> struct hash<MyStruct> : public unary_function<MyStruct, size_t>
 {
  size_t operator()(const MyStruct& mystruct) const
  {
   return 0; //hash here
  }
 };
}

Is there any way to create an interface like so:

struct Hashable
{
 virtual size_t hash() = 0;
};

And setup std::hash to work for any of its implementations? I'm pretty sure templates don't work that way, so that's left me in a bind. Is there a safe size_t idiom that could work sorta like the safe bool idiom for casting to size_t? Or something else? It's silly writing out a new std::hash specialization for every single struct when a common interface and a member function in each struct would be far more convenient.

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3  
I honestly don't see how much more convenient this is, but can certainly be done. FWIW, you don't need this base class at all (btw, it's missing a virtual destructor!): you can just do this for all types that have a hash() member, regardless of bases. –  R. Martinho Fernandes Nov 1 '12 at 17:49
    
Urk... I had never dug further, but I don't like this, like at all... Why not simply requiring that a size_t hash(T const&) may be found by ADL ? –  Matthieu M. Nov 1 '12 at 17:51
    
It can certainly be done with SFINAE and is_base_of, but why... the whole point of templates is that you can have generic code that does not require pointess runtime operations. –  Kerrek SB Nov 1 '12 at 17:52
    
@R.MartinhoFernandes: virtual destructors are overrated. Even std::true_type doesn't have one, and I derive from that more often than I can remember... –  Kerrek SB Nov 1 '12 at 17:53
    

2 Answers 2

up vote 4 down vote accepted

There is actually another solution:

template <typename T>
struct Hashable {
    size_t operator()(T const& t) { return hash_value(t); }
};

template <typename T, typename E = std::equal<T>, typename A = std::allocator<T>>
using MySet = std::unordered_set<T, Hashable<T>, E, A>;

Now, all you have to do is defining a free-function hash_value that accepts T or T const& as argument and returns a size_t.

EDIT: changed hash to hash_value, as it was in Boost.

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1  
And, if you really want to have virtual function overhead, you can have a free-standing hash that takes a IHashable interface and calls ->hash() on it. One of the points of the STL is to allow high abstraction coding techniques while getting near bare-metal run time performance, and a needless virtual function overhead on each hash doesn't qualify, so I wouldn't recommend it. –  Yakk Nov 1 '12 at 17:58
1  
@Yakk: indeed, which is why it's easier to start from free-functions and then have a polymorphic interface rather than starting from the polymorphic interface ;) –  Matthieu M. Nov 1 '12 at 18:00
    
@MatthieuM. there's no need for a conversion operator. The requirement is for a function object (why it's not something found by ADL I have no idea). The conversion operator was simply the OP day dreaming about a possible alternative. –  R. Martinho Fernandes Nov 1 '12 at 18:08
    
@R.MartinhoFernandes: Right. I am afraid I got confused too. –  Matthieu M. Nov 1 '12 at 18:44

a common interface and a member function in each struct would be far more convenient.

It wouldn't. Instead of std::hash taking care of hashing, you'd now have to bother every interface of every class/struct with this detail. You'd have to constantly deal with "Some colleague of mine deleted a Hashable". etc. It would not be better. It would be a whole lot worse.

You could achieve it, maybe, by a partial specialization with SFINAE.

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Well, that wouldn't be a convenient implementation then. I was wondering if it could be done in a non-ugly way. –  user173342 Nov 1 '12 at 17:54
2  
@user173342 you use the words "convenient" and "ugly" in a way that is completely different from the way other people do (as an example, "ugly" was the first thing that came to mind when I saw your suggestion). You need to be specific and objective about what properties you are looking for in a solution. –  R. Martinho Fernandes Nov 1 '12 at 17:56

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