Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

i'm trying to find the address of a function from a std::function.

The first solution was:

size_t getAddress(std::function<void (void)> function) {
    typedef void (fnType)(void);
    fnType ** fnPointer = function.target<fnType *>();
    return (size_t) *fnPointer;
}

But that only works for function with (void ()) signature, since i need for function that signature are (void (Type &)), i tried to do

template<typename T>
size_t getAddress(std::function<void (T &)> function) {
    typedef void (fnType)(T &);
    fnType ** fnPointer = function.target<fnType *>();
    return (size_t) *fnPointer;
}

And i get "Error - expected '(' for function-style cast or type construction"

Update: Is any way to capture member class address? for class members i'm using:

template<typename Clazz, typename Return, typename ...Arguments>
size_t getMemberAddress(std::function<Return (Clazz::*)(Arguments...)> & executor) {
    typedef Return (Clazz::*fnType)(Arguments...);
    fnType ** fnPointer = executor.template target<fnType *>();
    if (fnPointer != nullptr) {
        return (size_t) * fnPointer;
    }
    return 0;
}

Update: To capture lambda i'm using

template <typename Function>
struct function_traits
    : public function_traits<decltype(&Function::operator())> {
};

template <typename ClassType, typename ReturnType, typename... Args>
struct function_traits<ReturnType(ClassType::*)(Args...) const> {
    typedef ReturnType (*pointer)(Args...);
    typedef std::function<ReturnType(Args...)> function;
};

template <typename Function>
typename function_traits<Function>::function
to_function (Function & lambda) {
    return static_cast<typename function_traits<Function>::function>(lambda);
}

template <typename Lambda>
size_t getAddress(Lambda lambda) {
    auto function = new decltype(to_function(lambda))(to_function(lambda));
    void * func = static_cast<void *>(function);
    return (size_t)func;
}

std::cout << getAddress([] { std::cout << "Hello" << std::endl;}) << std::endl;
share|improve this question
2  
Seems to work fine. You might want to include a full example including usage. Something that shows actual failure. –  Captain Obvlious Aug 4 '13 at 4:40

1 Answer 1

up vote 8 down vote accepted

You need to use the template keyword when you call target:

#include <functional>
#include <iostream>

template<typename T>
size_t getAddress(std::function<void (T &)> f) {
    typedef void (fnType)(T &);
    fnType ** fnPointer = f.template target<fnType*>();
    return (size_t) *fnPointer;
}

void foo(int& a) {
    a = 0;
}

int main() {
    std::function<void(int&)> f = &foo;
    std::cout << (size_t)&foo << std::endl << getAddress(f) << std::endl;
    return 0;
}

Hint: When you have problems with C++ syntax, I suggest you use clang++ to compile your code. If you play around with how your write the code it will usually point you in the write direction to fix the error (when it can figure out what you are doing).

I also suggest that you use variadic templates to make your function a bit more general:

template<typename T, typename... U>
size_t getAddress(std::function<T(U...)> f) {
    typedef T(fnType)(U...);
    fnType ** fnPointer = f.template target<fnType*>();
    return (size_t) *fnPointer;
}
share|improve this answer
    
Thanks!, that work perfectly!. –  Agustin Alvarez Aug 4 '13 at 4:52
    
I'm currently using CLang 3.4 :D –  Agustin Alvarez Aug 4 '13 at 4:53
1  
In that case, if you change add typedef fnType* fnTypeP; and change your call to target to target<fnTypeP>, clang will tell you to add in template and where. If you make the parser's job easy enough it can figure out what you're trying to do :) –  Robert Mason Aug 4 '13 at 4:58
    
Wait, can you simply convert a std::function to a function pointer? Does that work with stateful functions too? How does that work? –  Mooing Duck Aug 4 '13 at 4:58
    
I'm using function address to store them into a map and able to remove it. You can convert a std::function into a C function pointer. –  Agustin Alvarez Aug 4 '13 at 5:00

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.