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Here's a general idea of how my class is defined as ( it performs other operations than what is mentioned below)

struct Funktor
{
    Funktor(int val):m_val(val){}
    bool operator()(int arg1, int arg2) { return m_val==arg1*arg2; }
    int m_val;
};

And now I have a vector of the above objects, and I am trying to call operator() using for_each, is there a way to do this? I know it can be done using bind2nd and mem_func_ref but when there's only one argument but for two arguments I haven't found a way.

int main()
{
    std::vector<Funktor> funktors;
    funktors.push_back(Funktor(10));
    funktors.push_back(Funktor(20));
    funktors.push_back(Funktor(30));

    int arg1 = 5, arg2 = 6;
    //instead of the for loop below I want to use for_each
    for(std::vector<Funktor>::iterator itr = funktors.begin(); funktors.end() != itr; ++itr)
    {
        (*itr)(arg1,arg2);
   }
}

Thanks for any help. Best.

CV

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1  
Can you clarify why you want to do this? It looks like effectively a no-op. –  Mark B Sep 12 '11 at 19:48
    
@Mark: Do you mean the operator() doesn't do anything? It was just to give an idea of the structure of my class. –  blueskin Sep 12 '11 at 19:55
    
@blueskin : He means std::for_each discards results from the functor its given, so the bools returned will never be used, making this particular sample pointless. –  ildjarn Sep 12 '11 at 20:02
    
oh, sry, its just an example, my class is not doing exactly what's shown here. Thanks –  blueskin Sep 12 '11 at 20:05

1 Answer 1

up vote 7 down vote accepted

C++03 Solution (without boost):

Write another functor as:

struct TwoArgFunctor
{
    int arg1, arg2;
    TwoArgFunctor(int a, int b) :arg1(a), arg2(b) {}

    template<typename Functor>
    bool operator()(Functor fun)
    {
        return fun(arg1, arg2); //here you invoke the actual functor!
    }
};

Then use it as:

std::for_each(funktors.begin(),funktors.end(), TwoArgFunctor(arg1,arg2));

C++11 Solution:

std::for_each(funktors.begin(),funktors.end(), 
                         [&] (Funktor f) -> bool { return f(arg1,arg2); });
share|improve this answer
    
C++ 03 solution would work. Thanks. Also, '[&] (Funktor f) -> bool' syntax looks funny, may I ask what it exactly means? –  blueskin Sep 12 '11 at 20:00
    
@blueskin: You can get familiar about that funny syntax here : en.wikipedia.org/wiki/… –  Nawaz Sep 12 '11 at 20:02
1  
thanks for the link Nawaz –  blueskin Sep 12 '11 at 20:21
    
A more readable C++11 solution would probably be range-based for loops. –  UncleBens Sep 12 '11 at 21:52

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