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In the following program I attempt the make the print function thread-safe by using a function-local mutex object:

#include <iostream>
#include <chrono>
#include <mutex>
#include <string>
#include <thread>


void print(const std::string & s)
{    
    // Thread safe?
    static std::mutex mtx;
    std::unique_lock<std::mutex> lock(mtx);
    std::cout <<s << std::endl;
}


int main()
{
    std::thread([&](){ for (int i = 0; i < 10; ++i) print("a" + std::to_string(i)); }).detach();
    std::thread([&](){ for (int i = 0; i < 10; ++i) print("b" + std::to_string(i)); }).detach();
    std::thread([&](){ for (int i = 0; i < 10; ++i) print("c" + std::to_string(i)); }).detach();
    std::thread([&](){ for (int i = 0; i < 10; ++i) print("d" + std::to_string(i)); }).detach();
    std::thread([&](){ for (int i = 0; i < 10; ++i) print("e" + std::to_string(i)); }).detach();
    std::this_thread::sleep_for(std::chrono::milliseconds(100));
}

Is this safe?

My doubts arise from this question, which presents a similar case.

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3 Answers 3

up vote 9 down vote accepted

Prior to C++11, this is not safe in general, unless your compiler makes some special guarantees about the way in which static locals are initialized.

Some time ago, while looking at a similar issue, I examined the assembly generated by Visual Studio for this case. The pseudocode for the generated assembly code for your print method looked something like this:

void print(const std::string & s)
{    
    if (!init_check_print_mtx) {
        init_check_print_mtx = true;
        mtx.mutex();  // call mutex() ctor for mtx
    }

    // ... rest of method
}

The init_check_print_mtx is a compiler generated global variable specific to this method which tracks whether the local static has been initialized. Note that inside the "one time" initialize block guarded by this variable, that the variable is set to true before the mutex is initialized.

I though this was silly since it ensures that other threads racing into this method will skip the initializer and use a uninitialized mtx - versus the alternative of possibly initializing mtx more than once - but in fact doing it this way allows you to avoid the infinite recursion issue that occurs if std::mutex() were to call back into print, and this behavior is in fact mandated by the standard.

Nemo above mentions that this has been fixed (more precisely, re-specified) in C++11 to require a wait for all racing threads, which would make this safe, but you'll need to check your own compiler for compliance. I didn't check if in fact the new spec includes this guarantee, but I wouldn't be at all surprised given that local statics were pretty much useless in multi-threaded environments without this (except perhaps for primitive values which didn't have any check-and-set behavior because they just referred directly to an already initialized location in the .data segment).

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2  
Here is a Q&A citing chapter and verse of the C++11 standard. Well, a draft of the standard, anyway. –  Nemo Jan 7 '13 at 6:23

As long as the mutex is static, yes.

Local, nonstatic would defintely NOT be safe. Unless all your threads use the same stack, which also means you've now invented memory where one cell can hold many different values at the same time, and are just waiting for the Nobel committee to notify you for the next Nobel prize.

You must have some sort of "global" (shared) memory space for mutexes.

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4  
But the variable used is static - isn't that shared? –  user166390 Dec 31 '12 at 23:03
    
Doh, I missed the "static" altogether - was that edited in afterwards? ;) I've edited. Hopefully no one else noticed... :) –  Mats Petersson Dec 31 '12 at 23:06
3  
As an aside, this works because C+11 codified the "Meyers singleton" pattern. If multiple threads hit the static local for the first time at once, all but one will block until the object (in this case, a std::mutex) is initialized. –  Nemo Dec 31 '12 at 23:08
    
@user166390 as long as the mutex has recursive flag, it doesn't matter. –  Zaffy Sep 20 '13 at 8:12

This is not the same as the linked question for several reasons.

The linked question is not C++11, but yours is. In C++11 initialization of static variables is always safe. Prior to C++11 it was only safe with some compilers e.g. GCC and Clang default to thread-safe initialization.

The linked question initializes the reference by calling a function, which is dynamic initialization and happens at run-time. The default constructor for std::mutex is constexpr so your static variable has constant initialization, i.e. the mutex can be initialized at compile-time (or link-time) so there is nothing to do dynamically at runtime. Even if multiple threads call the function concurrently there's nothing they actually need to do before using the mutex.

Your code is safe (assuming your compiler implements the C++11 rules correctly.)

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Interesting, going to check one's assumptions on the stuff, and seing an 1,5 year-old post edited :) –  mlvljr Sep 10 at 16:31

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