0

Using std::thread to run a method which runs an infinite loop, is there a way the loop can query if the thread has been requested to join... or do I manually have to add a "exitThread" flag?

In other words what would isJoined look like (untested pseudo code):

std::atomic<int> global_counter (0);

void Run()
{
  while(!isJoined())
  {
    doSomething();
    ++global_counter;
  }
}

int main()
{
  thread t(Run);
  Sleep(10000);
  t.join();
  cout << "Iterated " << global_counter << "times" << endl;
}
8

What you are trying to do is not only joining the thread, but also sending it a message. These two things are different and you need to do both.

To send the thread a message, you signal it using a conditional variable. Now that you know the name of the thing you need, you can google and you will find tons of good tutorials explaining how to signal threads using this concept, so I feel it is not necessary to go into details here.

  • Ah, I have slightly misunderstood what join does... rather than terminating the thread, it just blocks the current/calling thread until the other thread terminates. It makes no attempt to inform the thread it should exit, it just waits for it to do so? That makes it clear an explicit signal (a flag or a conditional variable) is required. – Mr. Boy Nov 4 '15 at 12:31
  • 1
    @Mr.Boy the join is a simple waitpid call, it doesn't inform the target thread anything, just waiting. check the manpage. – Zang MingJie Nov 4 '15 at 12:37
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    People always over-design things, because nothing bad will happen, just inefficient. But if you know the detail, simpler and more efficient design also fits – Zang MingJie Nov 4 '15 at 13:07
-2

Use a variable to indicate exit:

volatile boolean request_exit = false;

Test the variable in the loop:

while(!request_exit) { do work }

Then set the variable before join:

request_exit = true;
t.join();
  • 2
    Note that by just using volatile, you're not removing any randomness from the program and only ensuring that value will eventually be read by the other thread, whereas it might never be read without the keyword. It guarantees no order of operations whatsoever. – rubenvb Nov 4 '15 at 12:28
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    A well designed multi-thread program doesn't guarantee the order of exit, it only guarantees the target thread will see it. It is the target thread's duty to exit properly. – Zang MingJie Nov 4 '15 at 12:30
  • So it should use an atomic bool? – Mr. Boy Nov 4 '15 at 12:31
  • @Mr.Boy it is atomic by default – Zang MingJie Nov 4 '15 at 12:34
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    Nothing prevent cpu read from cache, even locks/barriers. They only guarantee the order and the atomic I explained up. Eg, core1: atomic{x=1,y=1}, atomic{x=2,y=2} barrier send_signal. now core2 may read {x=1,y=1} or {x=2,y=2} but after core2 received the signal, core2 can only see {x=2,y=2}. The barrier only ensure assign happens before the signal, it does ensure core2 will see the new value – Zang MingJie Nov 4 '15 at 13:00

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