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Im using visual studio 2012 and c++11. I dont understand why this does not work:

void client_loop(bool &run)
{
    while ( run );
}

int main()
{
    bool running = true;
    std::thread t(&client_loop,std::ref(running));

    running = false ;
    t.join();
}

In this case, the loop of thread t never finishes but I explicity set running to false. run and running have the same location. I tried to set running as a single global variable but nothing happens. I tried to pass a pointer value too but nothing.

The threads use the same heap. I really don't understand. Can anyone help me?

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Your program terminates too early to ever observe anything interesting. – Hans Passant Mar 11 '13 at 0:01
    
nope, i forgot to write in this example "t.join()" .. :) – Matteo Galeotti Mar 11 '13 at 0:03
    
what if you set running as volatile? – didierc Mar 11 '13 at 0:09
5  
@didierc: If he sets it as volatile, he'll probably be deceived into thinking he has working code. Microsoft defines volatile so it'll work, but the standard doesn't require it. – Jerry Coffin Mar 11 '13 at 1:57
    
@JerryCoffin thx, I guess I got this wrong at some point sometime ago. I stand corrected. – didierc Mar 11 '13 at 2:08
up vote 11 down vote accepted

Your program has Undefined Behavior, because it introduces a data race on the running variable (one thread writes it, another thread reads it).

You should use a mutex to synchronize access, or make running an atomic<bool>:

#include <iostream>
#include <thread>
#include <atomic>

void client_loop(std::atomic<bool> const& run)
{
    while (run.load());
}

int main()
{
    std::atomic<bool> running(true);
    std::thread t(&client_loop,std::ref(running));

    running = false ;
    t.join();

    std::cout << "Arrived";
}

See a working live example.

share|improve this answer
    
thank you, I (stupidly) thought that no precaution was needed if the second thread only read data.. I didnt know the "atomic" variable: But now that I uncovered im very happy. thanks again – Matteo Galeotti Mar 11 '13 at 0:38
    
+1 I learned something today. – didierc Mar 11 '13 at 1:10
    
@MatteoGaleotti It may have even worked on reasonable architectures (though still being UB,of course), hadn't this infinite loop been that simple to be merely optimized out. – Christian Rau Mar 11 '13 at 8:27
    
Two notes. First, run probably should not be declared const. Granted, the compiler can't optimize out the load, but still, the function assumes that the value changes. Second, the .load() isn't needed; while (run) ; also works; run is contextually converted to bool, which ends up applying its operator bool(). – Pete Becker Mar 11 '13 at 14:30
1  
@PeteBecker: Regarding load(), you're right, thank you for pointing that out. Regarding const, I've put it there to specify that client_loop() itself is not going to modify the value. Does putting const also imply that the function doesn't expect the value to change? I would say the answer is "no", but your comment seems to imply it is "yes". If so, could you please expand a bit? – Andy Prowl Mar 11 '13 at 14:36

The const probably doesn't affect the compiler's view of the code. In a single-threaded application, the value won't change (and this particular program is meaningless). In a multi-threaded application, since it's an atomic type, the compiler can't optimize out the load, so in fact there's no real issue here. It's really more a matter of style; since main modifies the value, and client_loop looks for that modification, it doesn't seem right to me to say that the value is const.

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