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template <class T> struct greater : binary_function <T,T,bool> {
  bool operator() (const T& x, const T& y) const
    {return x>y;}

template <class T> struct logical_and : binary_function <T,T,bool> {
  bool operator() (const T& x, const T& y) const
    {return x&&y;}

// (i > 5 && i <=10)
countBoost = std::count_if(vecInts.begin(), vecInts.end(),
                                                        ^^^^ // ???? Why ????
                                    boost::bind(std::greater<int>(),    _1, 5),
                                    boost::bind(std::less_equal<int>(), _1, 10))

Based on my understanding, the pass-in type T for std::logical_and<T> is the type of the pass-in parameters of function operator(). Given the above code, it seems that the type of std::greater is bool that is determined by the returned value of operator().

Is that correct?

Thank you

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2 Answers 2

up vote 1 down vote accepted

The boost binder does a bit more magic than what you might be expecting. When one of the bound arguments is a bind expression itself, it will execute that expression during the call and use the result. In this case, the internal bound expressions are calls to std::less<int> and std::greater<int>, both of which yield a bool, which is then passed to the std::logical_and<bool>.

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The return type of the operator() function is bool. The type of std::greater is std::greater. It's a functional object. Thus:

std::greater<int> g;
std::cout << typeof( g ).name() << std::endl;

will return whatever your compiler uses to display the instantiation type of a class template: "struct std::greater<int>" for VC++, for example.

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