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I have some doubts wether mutexes are enough to ensure thread safety of the following code example or if atomics are required. In short question is: Would making idxActive a regular int make this code thread unsafe? Or is code even with atomics thread unsafe? :( If it is important, I'm on 32 bit x86, linux, gcc 4.6. Of course I presume that 32 or 64 bit makes no diff, but if there is any diff between 32 and 64 bit I would like to know.

#include <memory>
#include <boost/thread/thread.hpp>
#include <string>
#include <vector>
#include <atomic>
#include <boost/thread/mutex.hpp>
using namespace std;
using namespace boost;
static const int N_DATA=2;
class Logger
    vector<string> data[N_DATA];
    atomic<int> idxActive;
    mutex addMutex;
    mutex printMutex;
        for (auto& elem: data)
    void switchDataUsed()
        mutex::scoped_lock sl(addMutex); (idxActive.load()+1)%N_DATA );
    void addLog(const string& str)
        mutex::scoped_lock sl(addMutex);
    void printCurrent()
        mutex::scoped_lock sl(printMutex);
        auto idxOld=(idxActive.load()+N_DATA-1)%N_DATA; //modulo -1
        for (auto& elem:data[idxOld])
int main()
    Logger log;
    return 0;
share|improve this question
Wouldn't this belong on codereview.SE? –  Teo Klestrup Röijezon Jun 30 '11 at 0:27
You know that you have std headers <thread> and <mutex> nowadays? –  Kerrek SB Jun 30 '11 at 0:30
@Kerrek SB-yeah, old habits die hard. –  NoSenseEtAl Jun 30 '11 at 1:05
@DontCare this is a general programming question(mutexes and atomics ), unfortunately I phrased the title makes it look like it is specific. –  NoSenseEtAl Jun 30 '11 at 1:20
@NoSenseEtAl - you have to name the lock, like mutex::scoped_lock Lock(addMutex); for it to stay alive. Otherwise it's a temporary object that just locks and unlocks immediately. –  Bo Persson Jun 30 '11 at 11:40

2 Answers 2

up vote 3 down vote accepted

You do not need to use atomic variables if all accesses to those variables are protected by a mutex. This is the case in your code, as all public member functions lock addMutex on entry. Therefore addIndex can be a plain int and everything will still work fine. The mutex locking and unlocking ensures that the correct values become visible to other threads in the right order.

std::atomic<> allows concurrent access outside the protection of a mutex, ensuring that threads see correct values of the variable, even in the face of concurrent modifications. If you stick to the default memory ordering it also ensures that each thread reads the latest value of the variable. std::atomic<> can be used to write thread-safe algorithms without mutexes, but is not required if all accesses are protected by the same mutex.

Important Update:

I just noticed that you're using two mutexes: one for addLog and one for printCurrent. In this case, you do need idxActive to be atomic, because the separate mutexes do not provide any synchronization between them.

share|improve this answer
I dont want to be rude but are you 100% sure? Because like I said in my comments to ChrisWue answer I'm not sure that mutex ensures order of updates, AFAIK it only ensures that max 1 thread at the time executes that part of the code, not that new values are immediately visible. I googled the mutex specs found almost nothing and what I found-no mention of the atomicity. –  NoSenseEtAl Jun 30 '11 at 8:48
Yes, I'm 100% sure. A mutex guarantees that any changes made to shared variables whilst the mutex is locked are visible to the thread that locks the mutex next. They would not be much use if this was not the case. –  Anthony Williams Jun 30 '11 at 9:05
OK, cool. And again, this will sound arrogant of me, but do you have any "serious" links(standard, gcc documentation...) that specify this. I tried MSDNing my search and for C# mutex had no luck in confirming your oppinion. BTW my feeling is that you are probably right, but when it comes to stuff like this I want to be 100% sure, –  NoSenseEtAl Jun 30 '11 at 9:12
Look at and 1.10 in the C++0x standard draft N3242. An unlock() synchronizes-with a subsequent lock() on the same object, which implies the required visibility. –  Anthony Williams Jun 30 '11 at 12:49
No problem. Please not the edit to my answer: if you use two mutexes you still need the atomic. –  Anthony Williams Jun 30 '11 at 13:01

atomic is not directly related to thread safety. It just ensures that the operations on it are exactly what it says: atomic. Even if all your operations were atomic your code would not necessarily be thread safe.

In your case, the code should be safe. Only 1 thread at a time can enter printCurrent(). While this function is executed other threads can call addLog() (but also only 1 at a time). Depending whether or not switchCurrent has already been executed those entries will make it into the current log or they won't but none will be entered while iterating over it. Only 1 thread at a time can enter addLog which shares its mutex with switchCurrent so they cannot be executed at the same time.

This will be the case even if you make idxActive a simple int Mh, the C++ memory model only deals with single-threaded code — so I'm not too sure if theoretically it could break it. I think if you make idxActive volatile (basically disallowing any load/store optimization on it at all) that it will be ok for all practical purposes. Alternatively you could remove the mutex from switchCurrent but then you need to keep idxActive atomic.

As improvement I would let switchCurrent return the old index instead of recalculating it.

share|improve this answer
"This will be the case even if you make idxActive a simple int." But cant it be that different cores can have different versions of idxActive in cache or registers? So although mutex guarantees that only one can enter critical section making idxActive regular int could cause threads to fill the wrong data vector? Or am I wrong? –  NoSenseEtAl Jun 30 '11 at 1:10
@NoSenseEaAl: Good point, updated my answer –  ChrisWue Jun 30 '11 at 1:45

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