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i have a (std::)queue / (std::)deque which pushed by one thread and popped by an other. so i know i have to lock a mutex on push and pop functions because they are modifying the queue, but do i also have to lock a mutex if i access the front()?

the reason why i am asking is, i don't really know how the queue is organized internally. i've read something that it is allocation/deleting on time it is needed. so if i read the front while the other thread is pushing, is it possible that the front is moved?

and how about iterators? do i also have to lock the mutex while an iterator is reading a value?

i think it is always a good idea to lock the mutex while reading but i'm not sure if it is really needed to lock the whole queue.mutex on every iterator/front access. it may slow down the the whole programm if it locks everytime.

share|improve this question
    
std::queue does not expose any iterators to its data, so you don't have to worry about the last point. Not sure about std::queue/std::deque though, I am not familiar with that data structure. – juanchopanza Feb 26 '13 at 10:32
    
i know, but deque. – user1810087 Feb 26 '13 at 10:33
up vote 2 down vote accepted

std::queue is just an adapter, which uses std::deque or std::list internally.

You won't just lock the queue on reading, but wait on a condition variable and check if there's data available at all. If you have this setup

std::queue<int> q;
std::mutex m;
std::condition_variable cv;

then you can wait for other threads providing data

std::unique_lock<std::mutex> guard(m);
while(q.empty())
    cv.wait(guard);

int n = q.front();
q.pop();

which will be notified, when data becomes available

cv.notify_one();

for example.

share|improve this answer
    
so if i understand the std::libs properly, the (de)que(ue) is not moving the items like std::vector? – user1810087 Feb 26 '13 at 10:56
    
@pi88el std::queue is just using std::deque. And std::deque is a sequence container like std::vector. So, std::deque might move around or copy its elements, if needed. – Olaf Dietsche Feb 26 '13 at 11:00
    
ok... i understand... lock ervery time... thank you. – user1810087 Feb 26 '13 at 11:04
    
@pi88el Even if deque wouldn't move its elements, you must use a lock, because front() + pop() is not atomic. – Olaf Dietsche Feb 26 '13 at 11:08
1  
I concur if there are multiple readers. Since a queue is an adapter of an underlying container if the container chosen is a deque (the default) you can safely read and pop one end on a single thread while pushing data in the other simultaneously on another. However, as soon as you introduce an additional reader you must latch front-access as you have nicely demonstrated here. (and +1, I'd up-vote it again just for the nice sample of the mt-classes =) – WhozCraig Feb 26 '13 at 11:30

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