1

I have a struct:

class Priority
{
public:
    int priority;

    bool operator>(const Priority& other) const
    {
        if (priority > other.priority) {
            return true;
        }
        return false;
    }
}

When I implement this:

using T = Priority;
std::priority_queue<T, vector<T>, greater<T>>> pq;

It works and calls operator> in Priority when sorting by priority.

But, when I change it to this:

using T = shared_ptr<Priority>;
std::priority_queue<T, vector<T>, greater<T>>> pq;

Then it reports an error when compiling.

So, is there any way to make it OK without changing class Priority and using its own operator>, but not using some additional function or lambda in comparing shared_prt<Priority>?

I think maybe it could be done by changing greater<T> into greater<type traits from T into Priority>? But how?


Thanks for answers. By the way, is it OK to use a proxy class like

class Sptr_Priority
{
public:
    shared_ptr<Priority> p;

    Sptr_Priority()
    {
        p = make_shared<Priority>();
    };

    Sptr_Priority(int i)
    {
        p = make_shared<Priority>(i);
    };

    bool operator>(const Sptr_Priority& other) const
    {
        if (*p > *(other.p)) {
            return true;
        }
        return false;
    }

    shared_ptr<Priority> operator->()
    {
        return p;
    }
};

And I call it by

using T = Sptr_Priority;
std::priority_queue<T, vector<T>, greater<T>>> pq;
5
  • 2
    Narrowly, the answer is yes: std::shared_ptr defines a member type element_type whose type, in this case, would be Priority. However, greater<Priority> still won't help you compare elements of type shared_ptr<Priority>. I don't think there's a built-in "dereference and compare" functor. Jul 7 at 4:17
  • 1
    std::priority_queue needs a comparator that compares Ts, not some perhaps tangentially related other type. If you want to compare std::shared_ptr<Priority>s by comparing the Prioritys they point to then you need a comparator that does that. std::greater doesn't do that. Jul 7 at 4:18
  • @NathanPierson Oh~ appreciate that, but how to get Priority from shared_ptr<Priority> with type traits?
    – f1msch
    Jul 7 at 4:44
  • Your thinking about this wrong. You don't need to get the type T you are defining that. You need to define a comparison type. Jul 7 at 5:00
  • Given that shared_ptr isn't comparable using a specialisation/instantiation of std::greater(), the answer is "no". The solution is exactly what you have said you don't want - using some additional function or lambda that does the comparison. For example std::priority_queue<T, vector<T>, [](const T &a, const T& b) {return std::greater(*a, *b);}) or using some additional function or lambda that does the comparison. Alternatively, you need to provide a operator>() that compares instances of std::shared_ptr<Priority> rather than comparing instances of Priority
    – Peter
    Jul 7 at 5:58

1 Answer 1

2

You are thinking bout this wrong:

using T = shared_ptr<Priority>;
std::priority_queue<T, vector<T>, greater<T>>> pq;

Here you are defining a priority queue that uses greater<shared_ptr<Priority>> to compare the values (and thus sort them). This std::greater functor uses bool operator>() (greater than comparetor) but the type shared_ptr<Priority> does not have a greater than comparator defined.

You need to define a type that can be used to compare objects in the vector of type shared_ptr<Priority>.

using T = shared_ptr<Priority>;
auto comp = [](T const& lhs, T const& rhs) {return (*lhs) > (*rhs);};
using Comp = decltype(comp);
std::priority_queue<T, vector<T>, Comp>> pq(comp);
2
  • Is it OK to use a proxy class like I added just now?
    – f1msch
    Jul 7 at 6:41
  • @f1msch Sure. You can simplify that comparison: bool operator>(const Sptr_Priority& other) const {return *p > other->p;} Jul 7 at 21:52

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