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Using fibonacci_heap results in a compilation error:

struct Less: public binary_function<Node*, Node*, bool>
{
    bool operator()(const Node*& __x,  Node*& __y) const
        { return __x->time < __y->time; }

};

boost::fibonacci_heap<Node*, Less >*    m_heap;

then

Less* ls = new Less;
m_heap = new boost::fibonacci_heap<Node*, Less >(1000, (*ls));

Any attempt to run m_heap->push(n) results in

no match for call to ‘(TimeSync::Less) (TimeSync::Node* const&, TimeSync::Node*&)’
UnmanagedUtils/Trading/Simulation/TimeSync.h:50: note: candidates are: bool TimeSync::Less::operator()(const TimeSync::Node*&, TimeSync::Node*&) const
/usr/local/include/boost-1_35/boost/property_map.hpp: In function ‘Reference boost::get(const boost::put_get_helper<Reference, PropertyMap>&, const K&) [with PropertyMap = boost::identity_property_map, Reference = unsigned int, K = TimeSync::Node*]’:
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Is there some reason you're doing weird things with memory? i.e. allocating data on the heap without visible reason. –  Wug Sep 19 '12 at 12:42
    
I need the Less object to be alive after the scope of this function, but anyway it does not matter, declaring Less as local variable results same –  Roman Sep 19 '12 at 12:46
    
Also, the method signature of the method the call expects indicates that a const modifier is not in the right place. Try changing your signature to: bool operator()(Node* const& __x, Node*& __y) const –  Wug Sep 19 '12 at 12:48
    
If the only reason you need it to be alive is so the heap can continue to own it, it already will, since you pass it a copy. –  Wug Sep 19 '12 at 12:50
    
did it before:), does not help, not the issue here (regarding the const qualifier) –  Roman Sep 19 '12 at 12:50
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1 Answer 1

up vote 2 down vote accepted

Change the signature to operator()(Node * const &, Node * const &) const.

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can u please explain? now the error is different –  Roman Sep 19 '12 at 12:55
    
The operator() of your predicate has to take the arguments by const-reference (or by value); that's all. Your original code had non-const references, which can't be bound to by the internal algorithms of the data structure, which presumably pass elements as constant references. –  Kerrek SB Sep 19 '12 at 12:56
    
@RomanNassimov: That said, I would personally just write the operator as operator()(Node *, Node *) const. There's no benefit here in passing the pointers by const-reference, since you know that they're very small types. –  Kerrek SB Sep 19 '12 at 13:03
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