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I'm trying to figure out how/if I can use unique_ptr in a queue.

// create queue
std::queue<std::unique_ptr<int>> q;

// add element
std::unique_ptr<int> p (new int{123});
q.push(std::move(p));

// try to grab the element
auto p2 = foo_queue.front();
q.pop(); 

I do understand why the code above doesn't work. Since the front & pop are 2 separate steps, the element cannot be moved. Is there a way to do this?

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2 Answers 2

up vote 31 down vote accepted

You should say explicitly that you want to move the pointer out of the queue. Like this:

std::unique_ptr<int> p2 = std::move(q.front());
q.pop();
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2  
@iliacholy: loosely speaking, q.front() returns an l-value, so you cannot copy-initialize p2 with it because unique_ptrs are not copyable. std::move converts it to an r-value, so now p2 is being move-initialized instead, which is allowed by design. –  ybungalobill Jan 2 '13 at 21:33
8  
Also important is that after the move, the top element in the queue is a unique_ptr equal to nullptr. The pop is needed to remove this "empty" unique_ptr from the queue. –  rubenvb Jan 3 '13 at 14:24
3  
@Mordachai: exception safety requires it. –  moswald Jul 9 '13 at 2:48
1  
@rubenvb it is not required to be null, strictly speaking. After move-constructing from it, it's just an invalid object, not owning a resource. Of course that is most easily implemented by making it null –  Arne Mertz Jul 9 '13 at 6:23
1  
@Mordachai: efficiency. Sometimes you can just as well use the object in the queue through the reference returned by front() and then delete and forget about it. Also in C++03 you could not implement an efficient return by value for pop(). –  ybungalobill Jul 9 '13 at 9:15
#include <iostream>
#include <iomanip>
#include <memory>
#include <queue>

using namespace std;

class A {
    public:
        void fun() {cout << "Hello" << endl;}
};

typedef unique_ptr<A> Ptr;

int main() {
    Ptr p(new A), p2(new A);
    queue<Ptr> q;

    q.push(move(p));
    q.push(move(p2));

    q.front()->fun();
    Ptr p3 = move(q.front());
    cout << "First pointer val: " << p3.get() << endl;
    q.pop();

    cout << q.front().get() << endl;
    p3 = move(q.front());
    cout << "Second pointer val: " << p3.get() << endl;
    q.pop();

    return 0;
}

The output of this program on g++4.6 is:

Hello
First pointer val: 0x1f4c010
0x1f4c030
Second pointer val: 0x1f4c030

So, as mentioned by others, I do not see any harm in using q.front() directly instead of first moving its ownership to an another pointer. Am I missing something here?

Thanks.

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