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So, the more I think about this the weirder its legality seems. When I pass my an instance of my memoizer functor into its constructor, the compiler doesn't complain. How should 'f' be read in the memoizer template? It seems that with the same type declaration OutputT (&f) InputT it can refer to a function by reference, or--and I thought this was illegal--a reference to a member function, namely operator() of an instance of the class memoizer<int,int>. Should f instead be read as 'a reference to something with an operator() defined?'

#include <map>
#include <iostream>

template<typename OutputT, typename InputT>
class memoizer
{
private:
    OutputT (&f) (InputT);
    std::map<InputT,OutputT> dat;

public:
    memoizer( OutputT (&f) ( InputT ) ) : f(f) { }

    OutputT operator()( InputT t )
    {
        if( dat.count(t)==0 )
            dat[t] = f(t);
        return dat[t];
    }
};

int fib( int n )
{
    if( n < 2 ) return 1;
    return fib( n-2 ) + fib( n-1 );
}

int main()
{
    memoizer<int,int> fib_memo( fib );
    memoizer<int,int> fib_memo_memo( fib_memo );    

    std::cout << fib( 12 ) << "\n";
    std::cout << fib_memo( 12 ) << "\n";
    std::cout << fib_memo_memo( 12 ) << "\n";
}

I mean, don't get me wrong: I'm glad it works, it just seems kind of 'magical.' Thanks in advance.

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1  
it works because of type erasure. type erasure is a little 'magical.' –  Max DeLiso Sep 6 '12 at 1:25
1  
If you repeat a typename more than once or if it's annoying to read (both in your case), use a typedef. typedef OutputT function_type(InputT);. –  GManNickG Sep 6 '12 at 1:31
    
@GManNickG Yeah, totally. There's a bunch of silliness in this example. In retrospect, I was pretty much proving to myself that a memoizer template is a bad idea (at least for recursive functions). A non-tail recursive function at that. But regarding the typedef... would you make that public or private? Thanks. Maybe that's a different question. –  Nathan Andrew Mullenax Sep 6 '12 at 1:56
    
@NathanAndrewMullenax: Since it's used in the public interface, I would make it public. (As private as is meaningful is my general guideline.) –  GManNickG Sep 6 '12 at 1:59

1 Answer 1

up vote 2 down vote accepted

You're tricking yourself. fib_memo_memo is not a memoizer whose f member variable contains fib_memo. Your initializer there is actually using the implicit copy constructor, so fib_memo_memo is just a copy of fib_memo. You can verify this yourself by adding

memoizer(const memoizer &m) = delete;

You'll start getting errors like

error: call to deleted constructor of 'memoizer<int, int>'
    memoizer<int,int> fib_memo_memo( fib_memo );
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