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The problem is: I want to use unordered_map to store keys and values, where the key can be either class A or class B, depending on the users options. Both classes A and B inherit from the same class P.

class A: public P {...}
class B: public P {...}

I would like to define the map with the abstract P class and later, depending on runtime options, assign there a map with A or with B as a key:

unordered_map< P, CValue, P::hash, P::equal_to> * pmap = new unordered_map< A, CValue, A::hash, A::equal_to>;

but I will get error:

 cannot convert ... in initialization

How can I declare such a "virtual" map?

share|improve this question
So we have map_unordered, unordered_map and unsorted_map - is it asking too much for you to get a simple name right? – nbt Jun 7 '11 at 10:35
Can you give an example on how this is going to be used? Also, do you need a map with heterogeneous keys, or do you need a family of maps with homogeneous keys? – Kerrek SB Jun 7 '11 at 13:29
At the beginning of the code I choose what type key will I use: A or B, and it will be used all the time later in the program. But I cannot "statically" define map template, as the key type depends on the user's option. In this particular case, I will use it to count some network statistics and I want to aggregate them by prefix or by AS number. – Jakub M. Jun 7 '11 at 15:51
You could make the key type a std::tuple<A,B> and then just one of the two entries; or you could make a small abstract wrapper class which is implemented by two derived classes that use different maps for the storage... would that work? – Kerrek SB Jun 7 '11 at 18:20

2 Answers 2

up vote 3 down vote accepted

Here's an example how you can make the map keyed on P* but still use different implementations in the derived classes:

struct P
  virtual size_t hash_self() const = 0;
  virtual bool equal(const P &) const = 0;

struct A : public P
  inline bool operator==(const A & other) const { return false; /*Implement!*/}
  size_t hash_self() const { return 1; /*Implement!*/ }
  bool equal(const P & p) const { return *this == dynamic_cast<const A &>(p); }

struct PHash
  size_t operator()(const P * const p) const { return p->hash_self(); }

struct PEqual
  bool operator()(const P * const p, const P * const q) const { return p->equal(*q); }

#include <unordered_map>

std::unordered_map<P *, double, PHash, PEqual> pmap{{ new A, .5 }};

The dynamic cast is valid because you promise only to compare pointers of the same derived type.

If you wanted to be cleaner, you could probably specialise std::hash<P*> and std::equal_to<P*>:

namespace std
  template<> struct hash<P*>
  { size_t operator()(P * const & p) const { return p->hash_self(); } };

  template<> struct equal_to<P*> : public binary_function<P*, P*, bool>
  { bool operator()(P * const & p, P * const & q) const { return p->equal(*q); } };

std::unordered_map<P *, int> qmap{{new A, -11}}; // just works!
share|improve this answer
unsorted_map< P, CValue, P::hash, P::equal_to> * pmap = new unsorted_map< A, CValue, A::hash, A::equal_to>;

The type P is not same as type A.

So X<P> is a different type than X<A>. That means, this code

X<P> *pX = new X<A>();

wouldn't compile, even if A is derived from P. GCC would give this error (ideone):

error: cannot convert ‘X<A>*’ to ‘X<P>*’ in initialization

which is self-explanatory if you know that X<A> is a completely different type than X<P>.

Note that its A which is derived from P. But X<A> is still NOT derived from X<P>. I think you're confusing the latter with the former.

So what I think you need is this:

unorder_map<P*, P::hash, P::equal_to>  objectMap;

You can insert object of type A* into this map:

objectMap.insert(new A());

You can insert object of type B* also:

objectMap.insert(new B());

After all, you want to treat all objects in the map polymorphically.

share|improve this answer
Thanks, that looks promising. If I have different hash functions for A and for B, how should I apply them? Once I declare objectMap and I know if I should use A or B, can I do something like objectMap::hash = A::hash? – Jakub M. Jun 7 '11 at 10:55

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