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So I want to start member function Open() in a boost thread:

.hpp

Class MyClass{
  public:
    int Open();
  private:
    void handle_thread();
};

.cpp

int MyClass::Open(){
    boost::thread t(handle_thread);
    t.join();
    return 0;
}

void MyClass::handle_thread(){
  //do stuff
}

test.cpp
int main(){
     MyClass* testObject = new MyClass()
     testObject.Open();
}

This results in a compiler error.

error: no matching function for call to 'boost::thread::thread(<unresolved overloaded function type>)'

I see that Open() doesn't know on which object to call handle_thread. But I cannot figure out what the correct syntax is.

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possible duplicate of Start thread with member function –  Jonathan Wakely Sep 18 '13 at 19:51

1 Answer 1

handle_thread is a member function and must be called as such:

int MyClass::Open(){
    boost::thread t(&MyClass::handle_thread, this);
    ...
}

Note that if you jointhe thread immediately afterwards, you function will be blocking. The behavior will be identical to that of a single-threaded application, besides the fact that handle_thread actually runs on a different thread. There will be no interleaving of threads (i.e. no parallelism) though.

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How can I manage that my function Open will keep running after I start the thread? –  tzippy Jun 18 '13 at 7:48
    
@tzippy std::threadis movable. You can return the thread object from Openand do the join outside. Depending on the nature of the thread, it might make sense to instead detach the thread and return a std::future (similar to what std::async does). –  ComicSansMS Jun 18 '13 at 8:40

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