2

This question already has an answer here:

I have a function which looks like below

I want to call lambda expression from pthread created threads.

void parallel(int start, int end, std::function<void(int)&&lambda, int noThreads>){
....
....
pthread_create(&threadid, NULL, startRoutine, args);//Want to call lambda(1) from the created thread
lambda(2);//Works fine from the main thread
....
....
}

How should I pass my lambda function to the startRoutine of the thread? and call lambda(1) from the startRoutine?.

marked as duplicate by François Andrieux c++ Jan 10 at 18:39

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  • 3
    Do you have to use pthread? std::thread will work with a lambda naturally. – NathanOliver Jan 10 at 18:35
  • 1
    Why not use args? – cleblanc Jan 10 at 18:36
  • If lambda was actually a lambda expression and if it didn't capture you could get a function pointer but as soon as you put it in an std::function there's no way to get a function pointer back. – François Andrieux Jan 10 at 18:38
2

You can not cast std::function to function pointer. But you can use std::thread, which will work with any callbable, including std::function.

If, for whatever reason, you can't use std::thread, you can create a local class and a static member function there, to call the std::function.

Something along following lines:

#include <functional>
#include <pthread.h>

void parallel(std::function<void(int)>&& lambda){
    struct caller {
        static void* callme_static(void* me) {
            return static_cast<caller*>(me)->callme();
        }
        void* callme() {
            callable(arg);
            return nullptr;
        }
        caller(std::function<void(int)> c, int a) : callable(c),
                                                      arg(a)   {}

        std::function<void(int)> callable;
        const int arg;
    };
    pthread_t threadid;

    int arg = 0;
    caller c(lambda, arg);

    //Want to call lambda(1) from the created thread
    pthread_create(&threadid, NULL, &caller::callme_static, &c);
}

This could be generalized into universal caller, but that would be exactly what std::thread already does, so if universal caller is desired, one could simply copy-paste std::thread.

  • Yes, please. I should do this without using c++ thread library. – srccode Jan 10 at 18:51
  • @srccode done, code added. – SergeyA Jan 10 at 19:05

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