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I have a std::list<myclass*> and in my class I have myclass::operator<(myclass &other) defined.

I use the std::list.sort() function, but it does not change anything in that list. Maybe it just sorts the pointers?

How can I sort the actual items in that list?

share|improve this question
    
Are you sure that std::list is the right container for your use case? It is rarely a good choice; std::vector or std::deque usually provides more favorable performance characteristics. Are you sure that you need to be storing raw pointers in the container? That too is rarely a good choice; usually it is preferable to store your objects in the container instead of pointers to them and if you do use pointers, smart pointers should be used. – James McNellis Jun 19 '11 at 18:25
    
Note: If you make operator< a member, it should be a const member function. But usually it should be a non-member anyway. See this FAQ entry. – sbi Jun 19 '11 at 21:56
up vote 11 down vote accepted

You are sorting the pointer values, not the myclass values. You have to write your own predicate to compare pointers by dereference:

template <typename T> bool PComp(const T * const & a, const T * const & b)
{
   return *a < *b;
}

std::vector<Foo*> myvec;
std::list<Foo*> mylist;
std::sort(myvec.begin(), myvec.end(), PComp<Foo>);
mylist.sort(PComp<Foo>);

By the way, I think you cannot sort std::list with std::sort from <algorithm> because it is not random access. Use the member function sort instead as MerickOWA says. (But that's generally less efficient than sorting a random-access container.) Alternatively, you can immediately store your objects in a sorted container like std::set<Foo*, PPred>, where PPred is the functor version of the predicate:

struct PPred {
  template <typename T> inline bool operator()(const T * a, const T * b) const
  { return *a < *b; }
};
share|improve this answer
1  
You can use a function instead of a struct. It's slightly less verbose. – Etienne de Martel Jun 19 '11 at 18:04
    
Since you're using const T*, then the OP needs to define comparison as operator<(const T &) const. – Nawaz Jun 19 '11 at 18:05
    
Etienne: Perfectly right, I was thinking I'd be partially specializing something on the way, but turns out I'm not. Editing! Nawaz: Also right, editing! – Kerrek SB Jun 19 '11 at 18:06
1  
-1 for sorting a vector instead of a list. – Cheers and hth. - Alf Jun 19 '11 at 18:24
1  
This is another advantage of using a function object instead of a function: you can lower the genericity into the operator() overload so that the named struct is not generic. Instead of using PComp<Foo>, you can simply use PComp(). – James McNellis Jun 20 '11 at 7:06

Several answers propose using a predicate that explicitly takes two pointers; this will work for your current case where you have a container of raw pointers, but it won't work for any other dereferenceable type, like smart pointers or iterators.

Why not go the more general route and match any type?

struct indirect_compare
{
    template <typename T>
    bool operator()(const T& lhs, const T& rhs) const 
    {
        return *lhs < *rhs;
    }
}

While a const reference is unnecessary for a T*, it is necessary for smart pointer types that are relatively expensive to copy (e.g. std::shared_ptr) or impossible to copy (e.g. std::unique_ptr).

Alternatively, you might consider using something like Boost's indirect_iterator, which moves the indirection into the iterator and can make for much cleaner code.

share|improve this answer

It'll sort the pointer as std::sort( Container ) use the operator< defined T. Here T is myclass*, then it is sorted using comparison over pointer.

You can pass a custom comparator functor to std::sort so make one take takes two myclass* and return the proper comparison :

template<class T>
struct ptr_comparison
{
   bool operator()(T* a, T* b) { return *a < *b; } 
};

list<myclass*> mylist;

// later

mylist.sort(ptr_comparison<myclass>());
share|improve this answer
1  
-1 for use of std::sort on a std::list. Also, the instantiantion of ptr_comparision is incorrect. – Cheers and hth. - Alf Jun 19 '11 at 18:23
    
thanks, edited. – Joel Falcou Jun 19 '11 at 18:49

assuming you don't have NULL pointers in your list just do

void ptrsorter( myclass *a, myclass *b ) {
  return *a < *b;
  }

mylist.sort( ptrsorter );

or if you're lucky enough to be using a more recent compiler (with C++0x-support), you can use a lambda-expression:

mylist.sort( []( myclass *a, myclass *b ) { return *a < *b } );
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