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Say I have the following function:

bool foo (int a); // This method declaration can not be changed.

How do I create a pthread for this? And how do I find out what the function returned? I've looked online and it seems like any function I want to create a pthread for must take a void* as an argument, and must return void* as well, and I'm not quite sure how the casting for all this would work, or where I would get the returned bool.

I'm new to C++, so please bear with me =)

share|improve this question
1  
I don't mean to be rude, but if you're new to C++ then I recommend you stay as far away from threading as possible, until you get much more experience using the language. – Greg Hewgill Jan 26 '12 at 21:34
    
I am a student, so unfortunately, that is not an option. If it is any consolation, I have used threads before, just not in C++ – user1172252 Jan 26 '12 at 21:38
    
A couple important bits that need to be in the question: Is the function a member function? If so, is it an instance member or static? – Michael Burr Jan 26 '12 at 22:33
up vote 5 down vote accepted

As far as you're dealing only with bools (which are, in fact, integers) it's possible, however not recommended, to cast the function to a pthread function type, as a pointer is compatible with (some) integer types:

pthread_t pid;
pthread_create(&pid, NULL, (void *(*)(void *))foo, (void *)argument));

However, you'd better wrap your function into another, pthread-compatible one, then return a pointer to its return value (must be free()'d after use):

void *foo_wrapper(void *arg)
{
    int a = *(int *)arg;
    bool retval = foo(a);
    bool *ret = malloc(sizeof(bool));
    *ret = retval;
    return ret;
}

then use:

pthread_t pid;
pthread_create(&pid, NULL, foo_wrapper, &a);

With this method, in the future you'll be able to call a function with arbitrary return or argument types.

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You could encapsulate the function you want to invoke in a function object, and then invoke that function object from within your pthread function:

First, define a function object that encapsulates your function call.

struct foo_functor {
    // Construct the object with your parameters
    foo_functor(int a) : ret_(), a_(a) {}

    // Invoke your function, capturing any return values.
    void operator()() {
        ret_ = foo(a_);
    }

    // Access the return value.
    bool result() {
        return ret_;
    }

private:
    bool ret_;
    int a_;
};

Second, define a function with the appropriate pthread signature that will invoke your function object.

// The wrapper function to call from pthread. This will in turn call 
extern "C" {
    void* thread_func(void* arg) {
        foo_functor* f = reinterpret_cast<foo_functor*>(arg);
        (*f)();
        return 0;
    }
}

Finally, instantiate your function object, and pass it as a parameter to the thread_func function.

foo_functor func(10);

pthread_t pid;
pthread_create(&pid, NULL, thread_func, &func);
pthread_join(pid, NULL);

bool ret = func.result();
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+1 for the functor-based-solution allowing greater generality – P Marecki Jun 22 '12 at 5:13

An easy work around is to use void* foo(int a, bool &b).

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For clarity: set b to the return value immediately prior to returning. – John Doucette Jan 26 '12 at 21:36
    
Yes, I wanted to do it that way, but unfortunately I have a number of functions in this general format which I need to create pthreads for – user1172252 Jan 26 '12 at 21:41
    
You can always make an array of bools and use indexes into that when initializing the threads, but H2CO3's answer is probably better practice. – John Doucette Jan 26 '12 at 21:46

A bool is functionally equivalent to an int. false is (usually) 0, and true is anything else. Thus

void *foo(void *a){
  int *a_int = (int *)a;
  //do things
  bool *x = new bool;
  *x = answer; 
  pthread_exit(x);
}

Then in your main you would get the returned result by casting it back to a bool.

bool *x; 
pthread_join(thread,(void *)x);
//Answer is *x
share|improve this answer
1  
I think you mean false is (usually) 0 and everything else is true. – André Caron Jan 26 '12 at 21:43
    
Fair enough - fixed it to use your language. – Chris Jan 26 '12 at 21:50

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