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i have a problem with this class.
the goal is to make the main function work properly. we were supposed to implement the "And" function object so that the code will work. i can't find what is the problem with our solution.
(the solution start and end are marked in comments in the code before the "main" function)
can you please help?
thanks

#include <iostream>
#include <algorithm>

using namespace std;

class NotNull
{
    public:
    bool operator()(const char* str) {return str != NULL;}
};

class BeginsWith
{
    char c;
    public:
    BeginsWith(char c) : c(c) {}
    bool operator()(const char* str) {return str[0] == c;}
};

class DividesBy {
    int mod;
    public:
    DividesBy(int mod) : mod(mod) {}
    bool operator()(int n) {return n%mod == 0;}
};

//***** This is where my sulotion starts ******

template <typename Function1, typename Function2, typename T>
class AndFunction
{
    Function1 f1;
    Function2 f2;
    public:
    AndFunction(Function1 g1, Function2 g2) : f1(g1), f2(g2) {}
    bool operator()(T t)
    {
        return (f1(t) && f2(t));
    }
};

template <typename Function1, typename Function2, typename T>
AndFunction <Function1, Function2, T>

bool And(Function1 f1, Function2 f2)
{
    return AndFunction<Function1, Function2, T>(f1, f2);
}

//***** This is where my sulotion ends ******

int main(int argc, char** argv)
{
    int array[10] = {1, 2, 3, 4, 5, 6, 7, 8, 9, 10};
    char* strings[4] = {"aba", NULL, "air", "boom"};
    cout << count_if(array,array+10,And(DividesBy(2),DividesBy(4))) << endl;
    // prints 2, since 4 and 8 are the only numbers which can be divided by
    // both 2 and 4.
    cout << count_if(strings,strings+4,And(NotNull(),BeginsWith('a'))) <<endl;
    // prints 2, since only "aba" and "air" are both not NULL and begin
    // with the character 'a'.
    return 0;
}
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What exactly does not work? What I find strange is that you pass t to your functions in operator bool. –  codymanix Jul 22 '10 at 11:25
    
Some notes: 1. Functors usually inherit from std::unary_function and std::binary_function or define typedefs first_argument_type, second_argument_type, result_type to make them compatible with e.g. Boost.Functions. 2. Class objects other than iterators are usually passed by const reference. 3. operator() is usually const. 4. Character literals are constant objects, and their conversion to char* is discouraged. 5. The functors NotNull, BeginsWith and DividesBy could als be generic. –  Philipp Jul 22 '10 at 11:38
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4 Answers 4

up vote 0 down vote accepted

The template parameter T can't be inferred, it must be specified explicitly:

template <typename T, typename Function1, typename Function2>
AndFunction <Function1, Function2, T>
And(Function1 f1, Function2 f2)
{
    return AndFunction<Function1, Function2, T>(f1, f2);
}

//***** This is where my sulotion ends ******

int main(int argc, char** argv)
{
    int array[10] = {1, 2, 3, 4, 5, 6, 7, 8, 9, 10};
    char* strings[4] = {"aba", NULL, "air", "boom"};
    cout << count_if(array,array+10,And<int>(DividesBy(2),DividesBy(4))) << endl;
    // prints 2, since 4 and 8 are the only numbers which can be divided by
    // both 2 and 4.
    cout << count_if(strings,strings+4,And<const char*>(NotNull(),BeginsWith('a'))) <<endl;
    // prints 2, since only "aba" and "air" are both not NULL and begin
    // with the character 'a'.
    return 0;
}

jpalecek's solution is better and works as follows:

//***** This is where my sulotion starts ******

template <typename Function1, typename Function2>
class AndFunction
{
    Function1 f1;
    Function2 f2;
    public:
    AndFunction(Function1 g1, Function2 g2) : f1(g1), f2(g2) {}
  template<typename T> bool operator()(T)
    {
        return (f1(t) && f2(t));
    }
};

template <typename Function1, typename Function2>
AndFunction <Function1, Function2>
And(Function1 f1, Function2 f2)
{
    return AndFunction<Function1, Function2>(f1, f2);
}

//***** This is where my sulotion ends ******
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Obviously, you don't know the T parameter when creating your functor. Did you consider delaying the introduction of T to the actual call (ie. making operator() a member-template)?

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your not calling your overloaded () operator when you create the object here: return AndFunction<Function1, Function2, T>(f1, f2);(you need a () before the ;) this code shouldn't even compile, actually, as currently it returns an object, not a bool.


EDIT: As pointed out, the function (bool And(Function1 f1, Function2 f2) ) must not return bool but rather a functional object for count_if to call via the overloaded () operator

share|improve this answer
    
actually it isn't supposed to return bool, but the function object. –  jpalecek Jul 22 '10 at 11:37
    
yeah, I was just going on the definition bool And(Function1 f1, Function2 f2), so guess the bug is inverted(if one can really invert bugs? :P) –  Necrolis Jul 22 '10 at 12:05
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Technically speaking you should be using the unary_function and binary_function classes as parents if you'd like them to place nice with STL algorithms. Here:

template<typename Func1, typename Func2,typename T>
struct AndFunction : public unary_function<T,bool>{
    AndFunction(Func1 _func1, Func2 _func2) 
        : _myFunc1(_func1),
        _myFunc2(_func2){}

    bool operator()(T _t){
        return _myFunc1(_t) && _myFunc2(_2);
    }

private:
    Func1 _myFunc1;
    Func2 _myFunc2;
};

In your case you need to do

template<typename Func1, typename Func2, typename T> 
AndFunction<Func1, Func2, T> And(Func1 _func1, Func2 _func2){
    return AndFunction<Func1,Func2,T>(_func1,_func2);
};

so that you don't confuse the operator with object creation and that you specify how you are to receive the function instructions.

On the flip side, the way your main works I think you really just want

struct And : public binary_function<bool, bool, bool>{
    bool operator()(bool _1, bool _2){
        return _1 && _2;
    }
};

Hope that helps.

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