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The following is possible in STL:

int count = count_if(v.begin(), v.end(), bind2nd(less<int>(), 3));

This returns the number of elements in v that are smaller than 3. How do compose a functor that returns the number of elements between 0 and 3? I know boost has some facilities for this but is it possible in pure STL?

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1  
There's std::logical_and. There's also std::bind, which is a better solution to bind2nd if you can use C++11. If you can use that, you're better off with a lambda, though. –  chris Dec 10 '12 at 11:01
    
Is C++11 permitted? –  hmjd Dec 10 '12 at 11:05
    
C++11 is not fully supported by Visual Studio yet so I'd prefer a C++03 solution. I know about lambdas but I was curious if it can be done without them. –  oddin Dec 10 '12 at 12:55

2 Answers 2

up vote 6 down vote accepted

If you mean by using the functor composition facilities of the standard library, then no, at least not in C++98. In C++11 you could use std::bind for arbitrary composition of functors:

using std::placeholders;
int count = std::count_if(v.begin(), v.end(), 
                          std::bind(std::logical_and<bool>(), 
                                    std::bind(std::less<int>(), _1, 3), 
                                    std::bind(std::greater<int>(), _1, 0)));

But that doesn't really pay the headache for such a simple predicate.

If C++11 features are allowed, then the simplest way would probably be a lambda, no need to make a complex functor composition (yourself):

int count = std::count_if(v.begin(), v.end(), [](int arg) { 
                          return arg > 0 && arg < 3; });

But for C++98 Chubsdad's answer is probably the best solution.

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+1: nice solution –  Chubsdad Dec 10 '12 at 11:45
    
You can remove much of the syntactic cruft by defining custom less and friends of the form struct less_t { template<class T> bool operator()(const T& a, const T& b) { return a < b; } } less;. With a local using namespace std; in addition to using namespace std::placeholders;, it looks quite a bit nicer: bind(logical_and, bind(less, _1, 3), bind(greater, _1, 0)). –  Jon Purdy Dec 10 '12 at 11:48
    
Of course, you can’t beat a lambda for concision and performance. Nor can you beat a functional language; in Haskell you’d write \ x -> x > 1 && x < 3 or perhaps liftA2 (&&) (> 1) (< 3) if you were feeling fancy. –  Jon Purdy Dec 10 '12 at 11:52
    
@JonPurdy But on the other hand "me just love std:: everywhere, is make me feel being big C++ developer". I would even have dropped the using std::placeholders, hadn't it enabled a better formatting of the example without a horizontal scroll bar. In the same way I wouldn't redefine things like std::less, which for me would count as additional overhead (even if those templated operators things you suggest are probably useful at other places, too), not in the era of lambdas. –  Christian Rau Dec 10 '12 at 11:54
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@PeterWood You can make a named variable of the lambda's type (which in the end is just a functor object) by saying auto in_range = [](...) {...};, so you can use it then like any other functor or function. But since the type of the lambda is unique and not known until its definition, this only works with auto or in other type deduction contexts (like template arguments and thus std::count_if). I.e. you cannot return a lambda driectly from a function (or use it as member variable), since you don't know its type beforehand, you would have to use a general std::function as wrapper. –  Christian Rau Dec 10 '12 at 13:05

Is this what you ask? I know it's not pure STL, but still..

struct InRange
{
    InRange(int x, int y) : mx(x), my(y) { }
    bool operator()(int x)
    {
        return (x >= mx) && (x <= my);
    }
    int mx, my;
};

int main() {
    std::vector<int> v;
    v.push_back(13);
    v.push_back(14);
    v.push_back(18);
    v.push_back(3);

    int count = std::count_if(v.begin(), v.end(), InRange(0, 3));
}
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This is what I'd do, too. I'd name the struct InRange. I'd probably delegate to a Range class which was being used reused elsewhere in the system. –  Peter Wood Dec 10 '12 at 11:16
    
@Peter Wood: I agree. mycheck is not very descriptive name. Will change it –  Chubsdad Dec 10 '12 at 11:20
    
I wanted an in-place solution without the need of an extra struct. –  oddin Dec 10 '12 at 12:58
    
Why don't you want the extra struct? –  Peter Wood Dec 10 '12 at 13:02
    
Because it's verbose. –  oddin Dec 10 '12 at 14:43

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