44

Why can't you pass an object by reference when creating a std::thread ?

For example the following snippit gives a compile error:

#include <iostream>
#include <thread>

using namespace std;

static void SimpleThread(int& a)  // compile error
//static void SimpleThread(int a)     // OK
{
    cout << __PRETTY_FUNCTION__ << ":" << a << endl;
}

int main()
{
    int a = 6;

    auto thread1 = std::thread(SimpleThread, a);

    thread1.join();
    return 0;
}

Error:

In file included from /usr/include/c++/4.8/thread:39:0,
                 from ./std_thread_refs.cpp:5:
/usr/include/c++/4.8/functional: In instantiation of ‘struct std::_Bind_simple<void (*(int))(int&)>’:
/usr/include/c++/4.8/thread:137:47:   required from ‘std::thread::thread(_Callable&&, _Args&& ...) [with _Callable = void (&)(int&); _Args = {int&}]’
./std_thread_refs.cpp:19:47:   required from here
/usr/include/c++/4.8/functional:1697:61: error: no type named ‘type’ in ‘class std::result_of<void (*(int))(int&)>’
       typedef typename result_of<_Callable(_Args...)>::type result_type;
                                                             ^
/usr/include/c++/4.8/functional:1727:9: error: no type named ‘type’ in ‘class std::result_of<void (*(int))(int&)>’
         _M_invoke(_Index_tuple<_Indices...>)
         ^

I've changed to passing a pointer, but is there a better work around?

67

Explicitly initialize the thread with a reference_wrapper by using std::ref:

auto thread1 = std::thread(SimpleThread, std::ref(a));

(or std::cref instead of std::ref, as appropriate). Per notes from cppreference on std:thread:

The arguments to the thread function are moved or copied by value. If a reference argument needs to be passed to the thread function, it has to be wrapped (e.g. with std::ref or std::cref).

  • 13
    The capture, sensibly, defaults to capture by value because otherwise things would fail horribly if the parameter went away before the thread could read it. You need to explicitly ask for this behavior so that there's something to indicate that you are assuming responsibility for ensuring that the target of the reference is still valid. – David Schwartz Dec 3 '15 at 23:30
  • 3
    Excellent! I was hoping there was a way to explicitly pass a reference. C++11 to the rescue again :) – austinmarton Dec 3 '15 at 23:42
12

Based on this comment, this answer elaborates on the reason why the arguments are not passed by reference to the thread function by default.

Consider the following function SimpleThread():

void SimpleThread(int& i) {
    std::this_thread::sleep_for(std::chrono::seconds{1});
    i = 0;
}

Now, imagine what would happen if the following code compiled (it does not compile):

int main()
{
    {
        int a;
        std::thread th(SimpleThread, a);
        th.detach();
    }
    // "a" is out of scope
    // at this point the thread may be still running
    // ...
}

The argument a would be passed by reference to SimpleThread(). The thread may still be sleeping in the function SimpleThread() after the variable a has already gone out of scope and its lifetime has ended. If so, i in SimpleThread() would actually be a dangling reference, and the assignment i = 0 would result in undefined behaviour.

By wrapping reference arguments with the class template std::reference_wrapper (using the function templates std::ref and std::cref) you explicitly express your intentions.

  • I think this is some kind of wrong argument on why arguments are not passed by reference because even using std::ref(a) leads to undefined behaviour in this scenario, isn't it ? – ampawd Oct 12 '19 at 19:05
  • @ampawd Yes, using std::ref(a) still leads to undefined behaviour. However, explicitly typing std::ref(a) warns you against passing a by reference, whereas typing just a does not. – 眠りネロク Oct 12 '19 at 20:36
  • 1
    Having to write std::ref(a) (instead of just a) to pass a by reference prevents you from accidentally thinking that a is being passed by value. – 眠りネロク Oct 12 '19 at 21:10

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