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I was reading some manuals about threads and I've come to a thought that the code they show is not safe:

std::cout << "starting first helper...\n";
std::thread helper1(foo);

std::cout << "starting second helper...\n";
std::thread helper2(bar);

std::cout << "waiting for helpers to finish..." << std::endl;
helper1.join();   // #1 NOT SAFE
helper2.join();   // #2 NOT SAFE

I believe this code is not absolutely safe. If I am not mistaking there is no guarantee that helper1 and helper2 are already in joinable state when control reaches lines marked as #1 and #2. Threads could still be not launched and have no ids at this point. Which will cause an uncaught exception being thrown from std::thread::join()

I think the following code fixes the problem. Am I right?

std::cout << "starting first helper...\n";
std::thread helper1(foo);

std::cout << "starting second helper...\n";
std::thread helper2(bar);

std::cout << "waiting for helpers to finish..." << std::endl;
while ( helper1.joinable() == false ) { }
helper1.join();   // #1 SAFE
while ( helper2.joinable() == false ) { }
helper2.join();   // #2 SAFE
share|improve this question
Can't the thread be joinable, even if it's not started?… –  doctorlove Nov 25 '13 at 11:39
@doctorlove std::thread::joinable return true if the thread object identifies an active thread of execution, false otherwise. I think it can not. –  Kolyunya Nov 25 '13 at 11:50
what are you quoting from? –  doctorlove Nov 25 '13 at 11:52
@doctorlove And turns out that active means scheduled too. –  Kolyunya Nov 25 '13 at 11:53

3 Answers 3

up vote 5 down vote accepted

A std::thread is joinable if it contains a thread state that has not been joined or detatched.

A std::thread gains a thread state by being non default constructed, or having one moveed into it from another std::thread. It loses it when moveed from.

There is no delay in gaining the thread state after construction completes. And it does not go away when the threaded function finishes. So there is not that problem.

There is the problem that if code throws above, you will fail to join or detatch, leading to bad news at program shutdown. Always wrap std::thread in a RAII wrapper to avoid that, or just use std::async that returns void and wrap the resulting std::future similarly (because the standard says it blocks in the dtor, but microsofts implementation does not, so you cannot trust if it will or not).

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Thank you for your answer. I do not have an access to the standard at the moment. Did you quote the standard or where can I read more about the topic? –  Kolyunya Nov 25 '13 at 11:58
In VC std::futures from std::async don't block in dtor? –  inf Nov 25 '13 at 12:14
@bamboon Yup, that's true. Tested it myself. –  Red XIII Nov 25 '13 at 13:33
@Kolyunya no, not a quote from the standard. Here is a (perfectly legal) link to a working draft of the next standard: ... From the standard, failure to join or detatch a thread causes std::terminate, the "run code" std::thread ctor has a postcondition of get_id() != id(), which is equivalent to joinable()==true. –  Yakk Nov 25 '13 at 14:38
Isn't there a typo in the comment get_id() != id()? Did you mean ==? I don't get it otherwise. –  Kolyunya Nov 25 '13 at 14:47

You are perceiving threads in an overly complicated way. join is there to safely join a thread. Just use:

std::thread my_thread(my_main);
share|improve this answer

The std::thread::thread(F&& f, Args&&... args) constructor has this postcondition:

Postconditions: get_id() != id(). *this represents the newly started thread.

The definition of joinable() is

Returns: get_id() != id()

Therefore the constructor's postcondition is that the object is joinable, and the postcondition applies as soon as the constructor completes. It is irrelevant whether the OS has actually started the thread yet, the thread object still knows the new thread's ID and can still wait for it to complete and join it.

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