5

I have class Passanger that has variables string name; string station; string ticket; and then I have another class and within this class I have vector<Passanger*> myQueue;

now I want to use stable_sort to sort myQueue. Is there any possibility, how to say to stable_sort, what should be the key, according to it shall sort myQueue?

std::stable_sort(myQueue.begin(),myQueue.end(), maybeSomethingElse() ); ?

4 Answers 4

13

There is an overload of std::stable_sort() that accepts a custom comparator as its third argument. You could provide a comparison function there, a functor, or a lambda (in C++11). Going with a lambda, for instance:

std::stable_sort(myQueue.begin(),myQueue.end(), [] (Passenger* p1, Passenger* p2)
{
    return p1->age() < p2->age(); // Or whatever fits your needs...
});
7

Yes, you need a comparator class. They look like this.

 class CompareFoo {
   public:
     bool operator() (const Foo* e1, const Foo* s2) 
     {
         return e1->name < e2->name; // strict weak ordering required
     }
 };

Then pass an instantiation of it as a parameter to stable_sort.

std::stable_sort(myQueue.begin(), myQueue.end(), CompareFoo());
1
  • 1
    A function will work the same way in this case in place of function object.
    – Sumit Gera
    Oct 31, 2013 at 12:49
3

Define a comparator using a lambda for example (with std::tie if the sort is dependent on more than one attribute of Passanger):

std::stable_sort(myQueue.begin(),
                 myQueue.end(),
                 [](Passanger* p1, Passanger* p2)
                 {
                     return std::tie(p1->name(), p1->station()) <
                            std::tie(p2->name(), p2->station());
                 });

If c++11 is not available define the comparator elsewhere and use boost::tie.

1

You can do this by specifying your own comparison function.

Some useful references:

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.