214

I am using std::queue for implementing JobQueue class. ( Basically this class process each job in FIFO manner). In one scenario, I want to clear the queue in one shot( delete all jobs from the queue). I don't see any clear method available in std::queue class.

How do I efficiently implement the clear method for JobQueue class ?

I have one simple solution of popping in a loop but I am looking for better ways.

//Clears the job queue
void JobQueue ::clearJobs()
 {
  // I want to avoid pop in a loop
    while (!m_Queue.empty())
    {
        m_Queue.pop();
    }
}
1

12 Answers 12

328

A common idiom for clearing standard containers is swapping with an empty version of the container:

void clear( std::queue<int> &q )
{
   std::queue<int> empty;
   std::swap( q, empty );
}

It is also the only way of actually clearing the memory held inside some containers (std::vector)

19
  • 53
    Better yet is std::queue<int>().swap(q). With copy and swap idiom, all this should be equivalent to q = std::queue<int>(). Commented Nov 19, 2010 at 16:42
  • 12
    While std::queue<int>().swap(q) is equivalent to the code above, q = std::queue<int>() need not be equivalent. Since there is no transfer of ownership in the assignment of the allocated memory some containers (like vector) might just call the destructors of the previously held elements and set the size (or equivalent operation with the stored pointers) without actually releasing the memory. Commented Nov 20, 2010 at 19:44
  • 7
    queue doesn't have a swap(other) method, so queue<int>().swap(q) doesn't compile. I think you have to use the generic swap(a, b). Commented Oct 5, 2011 at 7:59
  • 3
    @ThorbjørnLindeijer: In C++03 you are right, in C++11 queues do have swap as a member function, and additionally there is a free function overload that will swap two queues of the same type. Commented Mar 20, 2012 at 14:58
  • 13
    @ThorbjørnLindeijer: From the perspective of the users of the original queue, those elements do not exist. You are correct in that they will be destroyed one after the other and the cost is linear, but they are not accessible by anyone else other than the local function. In a multithreaded environment, you would lock, swap a non-temporary queue with the original one, unlock (to allow for concurrent accesses) and let the swapped queue die. This way you can move the cost of destruction outside of the critical section. Commented Mar 27, 2012 at 21:34
56

Yes - a bit of a misfeature of the queue class, IMHO. This is what I do:

#include <queue>
using namespace std;;

int main() {
    queue <int> q1;
    // stuff
    q1 = queue<int>();  
}
9
  • 10
    @Naszta Please elaborate how swap is "more effective"
    – bobobobo
    Commented May 24, 2013 at 0:33
  • @bobobobo: q1.swap(queue<int>());
    – Naszta
    Commented May 24, 2013 at 19:23
  • 16
    q1=queue<int>(); is both shorter, and clearer (you're not really trying to .swap, you're trying to .clear).
    – bobobobo
    Commented May 24, 2013 at 23:25
  • 42
    With the new C++, just q1 = {} is enough Commented Feb 21, 2015 at 17:28
  • 2
    @Ari syntax (2) at list_initialization and (10) at operator_assignment. Default queue<T> constructor matches empty argument list {} and is implicit, so it is called, then q1.operator=(queue<T>&&) consumes the newly created queue Commented Oct 27, 2018 at 16:15
38

In C++11 you can clear the queue by doing this:

std::queue<int> queue;
// ...
queue = {};
2
  • 7
    hey am just wondering if its O(n) or O(1) ? Commented Jan 17, 2021 at 9:28
  • 1
    @TilakMadichetti In the general case O(n) because the destructor has to be called for each contained element. This is also the case for clear() methods such as in std::vector. For POD elements, no element-wise destructor call is necessary, it should then be O(1) for vector but for queue it depends on the underlying container. The default std::deque reserves M chunks of memory where M is proportional to n (number of elements). So for default std::queue this it still O(n).
    – phinz
    Commented Feb 23, 2023 at 6:34
35

Author of the topic asked how to clear the queue "efficiently", so I assume he wants better complexity than linear O(queue size). Methods served by David Rodriguez, anon have the same complexity: according to STL reference, operator = has complexity O(queue size). IMHO it's because each element of queue is reserved separately and it isn't allocated in one big memory block, like in vector. So to clear all memory, we have to delete every element separately. So the straightest way to clear std::queue is one line:

while(!Q.empty()) Q.pop();
3
  • 6
    You can't just look at the O complexity of the operation if you are operating on real data. I would take a O(n^2) algorithm over a O(n) algorithm if the constants on the linear operation make it slower than the quadratic for all n < 2^64, unless I had some strong reason to believe I had to search the IPv6 address space or some other specific problem. Performance in reality is more important to me than performance at the limit. Commented Apr 16, 2012 at 6:26
  • 4
    This better answer than accepted answer because internally queue does this anyway when getting destroyed. So the accepted answer is O(n) plus it does extra allocations and initializations for brand new queue. Commented Dec 2, 2016 at 1:08
  • 1
    Remember, O(n) means less than or equal to n complexity. So, yes, in some cases like queue<vector<int>>, it will need to destroy each element 1 by 1, which will be slow either way, but in queue<int>, memory actually is allocated in one big block, and so it does not need to destroy the internal elements, and so queue's destructor can use a single efficient free() operation which almost certainly takes less than O(n) time.
    – Benjamin
    Commented Jun 8, 2019 at 13:23
20

Apparently, there are two most obvious ways to clear std::queue: swapping with empty object and assignment to empty object.

I would suggest using assignment because it simply faster, more readable, and unambiguous.

I measured performance using following simple code and I found that swapping in C++03 version works 70-80% slower than assignment to an empty object. In C++11 there is no difference in performance, however. Anyway, I would go with assignment.

#include <algorithm>
#include <ctime>
#include <iostream>
#include <queue>
#include <vector>

int main()
{
    std::cout << "Started" << std::endl;

    std::queue<int> q;

    for (int i = 0; i < 10000; ++i)
    {
        q.push(i);
    }

    std::vector<std::queue<int> > queues(10000, q);

    const std::clock_t begin = std::clock();

    for (std::vector<int>::size_type i = 0; i < queues.size(); ++i)
    {
        // OK in all versions
        queues[i] = std::queue<int>();

        // OK since C++11
        // std::queue<int>().swap(queues[i]);

        // OK before C++11 but slow
        // std::queue<int> empty;
        // std::swap(empty, queues[i]);
    }

    const double elapsed = double(clock() - begin) / CLOCKS_PER_SEC;

    std::cout << elapsed << std::endl;

    return 0;
}
2
  • 2
    Results with C++11: queues[i] = std::queue<int>();: 1.168, std::queue<int>().swap(queues[i]);: 1.151, std::queue<int> empty; std::swap(empty, queues[i]);: 1.164, while (!queues[i].empty()) queues[i].pop();: 0.189. Last one is the fastest by far. Thanks for the test code!
    – Burak
    Commented Aug 15, 2020 at 13:24
  • Tested with gcc and clang on godbolt.org; The results were very different than what @Burak commented above. Iterating pop() was significantly slower than the other methods, even if using auto & q=queues[i]; to make sure the lookup happens once(usually the compiler would optimize though). Other methods, including queues[i]={};, were not very different in terms of speed. Commented Mar 8 at 0:30
8

You could create a class that inherits from queue and clear the underlying container directly. This is very efficient.

template<class T>
class queue_clearable : public std::queue<T>
{
public:
    void clear()
    {
        c.clear();
    }
};

Maybe your a implementation also allows your Queue object (here JobQueue) to inherit std::queue<Job> instead of having the queue as a member variable. This way you would have direct access to c.clear() in your member functions.

1
  • 14
    STL containers are not designed to be inherited from. In this case you're probably okay because you're not adding any additional member variables, but it's not a good thing to do in general.
    – bstamour
    Commented Apr 29, 2013 at 20:40
3

Assuming your m_Queue contains integers:

std::queue<int>().swap(m_Queue)

Otherwise, if it contains e.g. pointers to Job objects, then:

std::queue<Job*>().swap(m_Queue)

This way you swap an empty queue with your m_Queue, thus m_Queue becomes empty.

3

I do this (Using C++14):

std::queue<int> myqueue;
myqueue = decltype(myqueue){};

This way is useful if you have a non-trivial queue type that you don't want to build an alias/typedef for. I always make sure to leave a comment around this usage, though, to explain to unsuspecting / maintenance programmers that this isn't crazy, and done in lieu of an actual clear() method.

1
  • 2
    Why do you explicitly state the type at the assignment operator? I assume that myqueue = { }; will work just fine. Commented Jan 29, 2020 at 18:21
2

I'd rather not rely on swap() or setting the queue to a newly created queue object, because the queue elements are not properly destroyed. Calling pop()invokes the destructor for the respective element object. This might not be an issue in <int> queues but might very well have side effects on queues containing objects.

Therefore a loop with while(!queue.empty()) queue.pop();seems unfortunately to be the most efficient solution at least for queues containing objects if you want to prevent possible side effects.

2
  • 4
    swap() or assignment calls the destructor on the now-defunct queue, which calls the destructors of all objects on the queue. Now, if your queue has objects that are actually pointers, that's a different issue -- but a simple pop() won't help you there, either.
    – jhfrontz
    Commented Jan 20, 2016 at 22:54
  • 1
    Why unfortunately? It's elegant and simple.
    – user3091673
    Commented Jan 17, 2020 at 15:50
1

Using a unique_ptr might be OK.
You then reset it to obtain an empty queue and release the memory of the first queue. As to the complexity? I'm not sure - but guess it's O(1).

Possible code:

typedef queue<int> quint;

unique_ptr<quint> p(new quint);

// ...

p.reset(new quint);  // the old queue has been destroyed and you start afresh with an empty queue
1
  • 1
    If you choose to empty the queue by deleting it, that's OK, but that's not what the question is about, and I don't see why unique_ptr comes in.
    – manuell
    Commented Jan 10, 2015 at 17:48
1

Another option is to use a simple hack to get the underlying container std::queue::c and call clear on it. This member must be present in std::queue as per the standard, but is unfortunately protected. The hack here was taken from this answer.

#include <queue>

template<class ADAPTER>
typename ADAPTER::container_type& get_container(ADAPTER& a)
{
    struct hack : ADAPTER
    {
        static typename ADAPTER::container_type& get(ADAPTER& a)
        {
            return a .* &hack::c;
        }
    };
    return hack::get(a);
}

template<typename T, typename C>
void clear(std::queue<T,C>& q)
{
    get_container(q).clear();
}

#include <iostream>
int main()
{
    std::queue<int> q;
    q.push(3);
    q.push(5);
    std::cout << q.size() << '\n';
    clear(q);
    std::cout << q.size() << '\n';
}
0

swap is not more efficient than "=". .

template <class T> void swap (T& a, T& b)
{
  T c(std::move(a)); a=std::move(b); b=std::move(c);
}

swap just use std::move. but for empty queue, std::move is useless.

my_queue = empty_queue; or my_queue = std::move(empty_queue);

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