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/* -*- mode: C++; indent-tabs-mode: nil; -*-
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*
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* This file is a part of LEMON, a generic C++ optimization library.
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*
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* Copyright (C) 2003-2010
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* Egervary Jeno Kombinatorikus Optimalizalasi Kutatocsoport
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* (Egervary Research Group on Combinatorial Optimization, EGRES).
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*
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* Permission to use, modify and distribute this software is granted
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* provided that this copyright notice appears in all copies. For
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* precise terms see the accompanying LICENSE file.
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*
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* This software is provided "AS IS" with no warranty of any kind,
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* express or implied, and with no claim as to its suitability for any
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* purpose.
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*
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*/
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#ifndef LEMON_HOWARD_MMC_H
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#define LEMON_HOWARD_MMC_H
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/// \ingroup min_mean_cycle
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///
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/// \file
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/// \brief Howard's algorithm for finding a minimum mean cycle.
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#include <vector>
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#include <limits>
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#include <lemon/core.h>
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#include <lemon/path.h>
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#include <lemon/tolerance.h>
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#include <lemon/connectivity.h>
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namespace lemon {
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/// \brief Default traits class of HowardMmc class.
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///
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/// Default traits class of HowardMmc class.
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/// \tparam GR The type of the digraph.
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/// \tparam CM The type of the cost map.
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/// It must conform to the \ref concepts::ReadMap "ReadMap" concept.
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#ifdef DOXYGEN
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template <typename GR, typename CM>
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#else
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template <typename GR, typename CM,
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bool integer = std::numeric_limits<typename CM::Value>::is_integer>
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#endif
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struct HowardMmcDefaultTraits
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{
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/// The type of the digraph
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typedef GR Digraph;
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/// The type of the cost map
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typedef CM CostMap;
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/// The type of the arc costs
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typedef typename CostMap::Value Cost;
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/// \brief The large cost type used for internal computations
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///
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/// The large cost type used for internal computations.
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/// It is \c long \c long if the \c Cost type is integer,
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/// otherwise it is \c double.
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/// \c Cost must be convertible to \c LargeCost.
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typedef double LargeCost;
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/// The tolerance type used for internal computations
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typedef lemon::Tolerance<LargeCost> Tolerance;
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/// \brief The path type of the found cycles
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///
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/// The path type of the found cycles.
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/// It must conform to the \ref lemon::concepts::Path "Path" concept
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/// and it must have an \c addBack() function.
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typedef lemon::Path<Digraph> Path;
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};
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// Default traits class for integer cost types
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template <typename GR, typename CM>
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struct HowardMmcDefaultTraits<GR, CM, true>
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{
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typedef GR Digraph;
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typedef CM CostMap;
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typedef typename CostMap::Value Cost;
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#ifdef LEMON_HAVE_LONG_LONG
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typedef long long LargeCost;
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#else
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typedef long LargeCost;
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#endif
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typedef lemon::Tolerance<LargeCost> Tolerance;
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typedef lemon::Path<Digraph> Path;
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};
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/// \addtogroup min_mean_cycle
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/// @{
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/// \brief Implementation of Howard's algorithm for finding a minimum
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/// mean cycle.
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///
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/// This class implements Howard's policy iteration algorithm for finding
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/// a directed cycle of minimum mean cost in a digraph
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/// \ref amo93networkflows, \ref dasdan98minmeancycle.
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/// This class provides the most efficient algorithm for the
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/// minimum mean cycle problem, though the best known theoretical
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/// bound on its running time is exponential.
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///
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/// \tparam GR The type of the digraph the algorithm runs on.
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/// \tparam CM The type of the cost map. The default
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/// map type is \ref concepts::Digraph::ArcMap "GR::ArcMap<int>".
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/// \tparam TR The traits class that defines various types used by the
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/// algorithm. By default, it is \ref HowardMmcDefaultTraits
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/// "HowardMmcDefaultTraits<GR, CM>".
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/// In most cases, this parameter should not be set directly,
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/// consider to use the named template parameters instead.
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#ifdef DOXYGEN
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template <typename GR, typename CM, typename TR>
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#else
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template < typename GR,
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typename CM = typename GR::template ArcMap<int>,
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typename TR = HowardMmcDefaultTraits<GR, CM> >
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#endif
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class HowardMmc
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{
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public:
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/// The type of the digraph
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typedef typename TR::Digraph Digraph;
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/// The type of the cost map
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typedef typename TR::CostMap CostMap;
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/// The type of the arc costs
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typedef typename TR::Cost Cost;
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/// \brief The large cost type
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///
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/// The large cost type used for internal computations.
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/// By default, it is \c long \c long if the \c Cost type is integer,
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/// otherwise it is \c double.
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typedef typename TR::LargeCost LargeCost;
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/// The tolerance type
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typedef typename TR::Tolerance Tolerance;
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/// \brief The path type of the found cycles
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///
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/// The path type of the found cycles.
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/// Using the \ref HowardMmcDefaultTraits "default traits class",
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/// it is \ref lemon::Path "Path<Digraph>".
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typedef typename TR::Path Path;
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/// The \ref HowardMmcDefaultTraits "traits class" of the algorithm
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typedef TR Traits;
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private:
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TEMPLATE_DIGRAPH_TYPEDEFS(Digraph);
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// The digraph the algorithm runs on
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const Digraph &_gr;
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// The cost of the arcs
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const CostMap &_cost;
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// Data for the found cycles
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bool _curr_found, _best_found;
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LargeCost _curr_cost, _best_cost;
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int _curr_size, _best_size;
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Node _curr_node, _best_node;
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Path *_cycle_path;
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bool _local_path;
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// Internal data used by the algorithm
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typename Digraph::template NodeMap<Arc> _policy;
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typename Digraph::template NodeMap<bool> _reached;
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typename Digraph::template NodeMap<int> _level;
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typename Digraph::template NodeMap<LargeCost> _dist;
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// Data for storing the strongly connected components
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int _comp_num;
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typename Digraph::template NodeMap<int> _comp;
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std::vector<std::vector<Node> > _comp_nodes;
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std::vector<Node>* _nodes;
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typename Digraph::template NodeMap<std::vector<Arc> > _in_arcs;
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// Queue used for BFS search
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std::vector<Node> _queue;
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int _qfront, _qback;
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Tolerance _tolerance;
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// Infinite constant
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const LargeCost INF;
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public:
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/// \name Named Template Parameters
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/// @{
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template <typename T>
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struct SetLargeCostTraits : public Traits {
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typedef T LargeCost;
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typedef lemon::Tolerance<T> Tolerance;
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};
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/// \brief \ref named-templ-param "Named parameter" for setting
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/// \c LargeCost type.
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///
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/// \ref named-templ-param "Named parameter" for setting \c LargeCost
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/// type. It is used for internal computations in the algorithm.
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template <typename T>
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struct SetLargeCost
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: public HowardMmc<GR, CM, SetLargeCostTraits<T> > {
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typedef HowardMmc<GR, CM, SetLargeCostTraits<T> > Create;
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};
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template <typename T>
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struct SetPathTraits : public Traits {
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typedef T Path;
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};
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/// \brief \ref named-templ-param "Named parameter" for setting
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/// \c %Path type.
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///
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/// \ref named-templ-param "Named parameter" for setting the \c %Path
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/// type of the found cycles.
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/// It must conform to the \ref lemon::concepts::Path "Path" concept
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/// and it must have an \c addBack() function.
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template <typename T>
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struct SetPath
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: public HowardMmc<GR, CM, SetPathTraits<T> > {
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typedef HowardMmc<GR, CM, SetPathTraits<T> > Create;
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};
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/// @}
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protected:
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HowardMmc() {}
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public:
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/// \brief Constructor.
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///
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/// The constructor of the class.
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///
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/// \param digraph The digraph the algorithm runs on.
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/// \param cost The costs of the arcs.
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HowardMmc( const Digraph &digraph,
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const CostMap &cost ) :
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_gr(digraph), _cost(cost), _best_found(false),
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_best_cost(0), _best_size(1), _cycle_path(NULL), _local_path(false),
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_policy(digraph), _reached(digraph), _level(digraph), _dist(digraph),
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_comp(digraph), _in_arcs(digraph),
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INF(std::numeric_limits<LargeCost>::has_infinity ?
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std::numeric_limits<LargeCost>::infinity() :
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std::numeric_limits<LargeCost>::max())
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{}
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/// Destructor.
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~HowardMmc() {
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if (_local_path) delete _cycle_path;
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}
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/// \brief Set the path structure for storing the found cycle.
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///
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/// This function sets an external path structure for storing the
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/// found cycle.
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///
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/// If you don't call this function before calling \ref run() or
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/// \ref findCycleMean(), it will allocate a local \ref Path "path"
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/// structure. The destuctor deallocates this automatically
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/// allocated object, of course.
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///
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/// \note The algorithm calls only the \ref lemon::Path::addBack()
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/// "addBack()" function of the given path structure.
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///
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/// \return <tt>(*this)</tt>
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HowardMmc& cycle(Path &path) {
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if (_local_path) {
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delete _cycle_path;
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_local_path = false;
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}
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_cycle_path = &path;
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return *this;
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}
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/// \brief Set the tolerance used by the algorithm.
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///
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/// This function sets the tolerance object used by the algorithm.
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///
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/// \return <tt>(*this)</tt>
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HowardMmc& tolerance(const Tolerance& tolerance) {
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_tolerance = tolerance;
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return *this;
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}
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kpeter@769
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kpeter@769
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/// \brief Return a const reference to the tolerance.
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kpeter@769
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///
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/// This function returns a const reference to the tolerance object
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/// used by the algorithm.
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const Tolerance& tolerance() const {
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return _tolerance;
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}
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/// \name Execution control
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/// The simplest way to execute the algorithm is to call the \ref run()
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/// function.\n
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/// If you only need the minimum mean cost, you may call
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/// \ref findCycleMean().
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/// @{
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/// \brief Run the algorithm.
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///
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/// This function runs the algorithm.
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/// It can be called more than once (e.g. if the underlying digraph
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/// and/or the arc costs have been modified).
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///
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/// \return \c true if a directed cycle exists in the digraph.
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///
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/// \note <tt>mmc.run()</tt> is just a shortcut of the following code.
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/// \code
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/// return mmc.findCycleMean() && mmc.findCycle();
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/// \endcode
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bool run() {
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return findCycleMean() && findCycle();
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}
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kpeter@758
|
326 |
|
kpeter@759
|
327 |
/// \brief Find the minimum cycle mean.
|
kpeter@758
|
328 |
///
|
kpeter@864
|
329 |
/// This function finds the minimum mean cost of the directed
|
kpeter@759
|
330 |
/// cycles in the digraph.
|
kpeter@758
|
331 |
///
|
kpeter@759
|
332 |
/// \return \c true if a directed cycle exists in the digraph.
|
kpeter@864
|
333 |
bool findCycleMean() {
|
kpeter@760
|
334 |
// Initialize and find strongly connected components
|
kpeter@760
|
335 |
init();
|
kpeter@760
|
336 |
findComponents();
|
alpar@877
|
337 |
|
kpeter@759
|
338 |
// Find the minimum cycle mean in the components
|
kpeter@758
|
339 |
for (int comp = 0; comp < _comp_num; ++comp) {
|
kpeter@760
|
340 |
// Find the minimum mean cycle in the current component
|
kpeter@760
|
341 |
if (!buildPolicyGraph(comp)) continue;
|
kpeter@758
|
342 |
while (true) {
|
kpeter@760
|
343 |
findPolicyCycle();
|
kpeter@758
|
344 |
if (!computeNodeDistances()) break;
|
kpeter@758
|
345 |
}
|
kpeter@760
|
346 |
// Update the best cycle (global minimum mean cycle)
|
kpeter@767
|
347 |
if ( _curr_found && (!_best_found ||
|
kpeter@864
|
348 |
_curr_cost * _best_size < _best_cost * _curr_size) ) {
|
kpeter@760
|
349 |
_best_found = true;
|
kpeter@864
|
350 |
_best_cost = _curr_cost;
|
kpeter@760
|
351 |
_best_size = _curr_size;
|
kpeter@760
|
352 |
_best_node = _curr_node;
|
kpeter@760
|
353 |
}
|
kpeter@758
|
354 |
}
|
kpeter@760
|
355 |
return _best_found;
|
kpeter@758
|
356 |
}
|
kpeter@758
|
357 |
|
kpeter@758
|
358 |
/// \brief Find a minimum mean directed cycle.
|
kpeter@758
|
359 |
///
|
kpeter@864
|
360 |
/// This function finds a directed cycle of minimum mean cost
|
kpeter@864
|
361 |
/// in the digraph using the data computed by findCycleMean().
|
kpeter@758
|
362 |
///
|
kpeter@758
|
363 |
/// \return \c true if a directed cycle exists in the digraph.
|
kpeter@758
|
364 |
///
|
kpeter@864
|
365 |
/// \pre \ref findCycleMean() must be called before using this function.
|
kpeter@758
|
366 |
bool findCycle() {
|
kpeter@760
|
367 |
if (!_best_found) return false;
|
kpeter@760
|
368 |
_cycle_path->addBack(_policy[_best_node]);
|
kpeter@760
|
369 |
for ( Node v = _best_node;
|
kpeter@760
|
370 |
(v = _gr.target(_policy[v])) != _best_node; ) {
|
kpeter@758
|
371 |
_cycle_path->addBack(_policy[v]);
|
kpeter@758
|
372 |
}
|
kpeter@758
|
373 |
return true;
|
kpeter@758
|
374 |
}
|
kpeter@758
|
375 |
|
kpeter@758
|
376 |
/// @}
|
kpeter@758
|
377 |
|
kpeter@758
|
378 |
/// \name Query Functions
|
kpeter@759
|
379 |
/// The results of the algorithm can be obtained using these
|
kpeter@758
|
380 |
/// functions.\n
|
kpeter@758
|
381 |
/// The algorithm should be executed before using them.
|
kpeter@758
|
382 |
|
kpeter@758
|
383 |
/// @{
|
kpeter@758
|
384 |
|
kpeter@864
|
385 |
/// \brief Return the total cost of the found cycle.
|
kpeter@758
|
386 |
///
|
kpeter@864
|
387 |
/// This function returns the total cost of the found cycle.
|
kpeter@758
|
388 |
///
|
kpeter@864
|
389 |
/// \pre \ref run() or \ref findCycleMean() must be called before
|
kpeter@758
|
390 |
/// using this function.
|
kpeter@864
|
391 |
Cost cycleCost() const {
|
kpeter@864
|
392 |
return static_cast<Cost>(_best_cost);
|
kpeter@758
|
393 |
}
|
kpeter@758
|
394 |
|
kpeter@758
|
395 |
/// \brief Return the number of arcs on the found cycle.
|
kpeter@758
|
396 |
///
|
kpeter@758
|
397 |
/// This function returns the number of arcs on the found cycle.
|
kpeter@758
|
398 |
///
|
kpeter@864
|
399 |
/// \pre \ref run() or \ref findCycleMean() must be called before
|
kpeter@758
|
400 |
/// using this function.
|
kpeter@864
|
401 |
int cycleSize() const {
|
kpeter@760
|
402 |
return _best_size;
|
kpeter@758
|
403 |
}
|
kpeter@758
|
404 |
|
kpeter@864
|
405 |
/// \brief Return the mean cost of the found cycle.
|
kpeter@758
|
406 |
///
|
kpeter@864
|
407 |
/// This function returns the mean cost of the found cycle.
|
kpeter@758
|
408 |
///
|
kpeter@760
|
409 |
/// \note <tt>alg.cycleMean()</tt> is just a shortcut of the
|
kpeter@758
|
410 |
/// following code.
|
kpeter@758
|
411 |
/// \code
|
kpeter@864
|
412 |
/// return static_cast<double>(alg.cycleCost()) / alg.cycleSize();
|
kpeter@758
|
413 |
/// \endcode
|
kpeter@758
|
414 |
///
|
kpeter@864
|
415 |
/// \pre \ref run() or \ref findCycleMean() must be called before
|
kpeter@758
|
416 |
/// using this function.
|
kpeter@758
|
417 |
double cycleMean() const {
|
kpeter@864
|
418 |
return static_cast<double>(_best_cost) / _best_size;
|
kpeter@758
|
419 |
}
|
kpeter@758
|
420 |
|
kpeter@758
|
421 |
/// \brief Return the found cycle.
|
kpeter@758
|
422 |
///
|
kpeter@758
|
423 |
/// This function returns a const reference to the path structure
|
kpeter@758
|
424 |
/// storing the found cycle.
|
kpeter@758
|
425 |
///
|
kpeter@758
|
426 |
/// \pre \ref run() or \ref findCycle() must be called before using
|
kpeter@758
|
427 |
/// this function.
|
kpeter@758
|
428 |
const Path& cycle() const {
|
kpeter@758
|
429 |
return *_cycle_path;
|
kpeter@758
|
430 |
}
|
kpeter@758
|
431 |
|
kpeter@758
|
432 |
///@}
|
kpeter@758
|
433 |
|
kpeter@758
|
434 |
private:
|
kpeter@758
|
435 |
|
kpeter@760
|
436 |
// Initialize
|
kpeter@760
|
437 |
void init() {
|
kpeter@760
|
438 |
if (!_cycle_path) {
|
kpeter@760
|
439 |
_local_path = true;
|
kpeter@760
|
440 |
_cycle_path = new Path;
|
kpeter@758
|
441 |
}
|
kpeter@760
|
442 |
_queue.resize(countNodes(_gr));
|
kpeter@760
|
443 |
_best_found = false;
|
kpeter@864
|
444 |
_best_cost = 0;
|
kpeter@760
|
445 |
_best_size = 1;
|
kpeter@760
|
446 |
_cycle_path->clear();
|
kpeter@760
|
447 |
}
|
alpar@877
|
448 |
|
kpeter@760
|
449 |
// Find strongly connected components and initialize _comp_nodes
|
kpeter@760
|
450 |
// and _in_arcs
|
kpeter@760
|
451 |
void findComponents() {
|
kpeter@760
|
452 |
_comp_num = stronglyConnectedComponents(_gr, _comp);
|
kpeter@760
|
453 |
_comp_nodes.resize(_comp_num);
|
kpeter@760
|
454 |
if (_comp_num == 1) {
|
kpeter@760
|
455 |
_comp_nodes[0].clear();
|
kpeter@760
|
456 |
for (NodeIt n(_gr); n != INVALID; ++n) {
|
kpeter@760
|
457 |
_comp_nodes[0].push_back(n);
|
kpeter@760
|
458 |
_in_arcs[n].clear();
|
kpeter@760
|
459 |
for (InArcIt a(_gr, n); a != INVALID; ++a) {
|
kpeter@760
|
460 |
_in_arcs[n].push_back(a);
|
kpeter@760
|
461 |
}
|
kpeter@760
|
462 |
}
|
kpeter@760
|
463 |
} else {
|
kpeter@760
|
464 |
for (int i = 0; i < _comp_num; ++i)
|
kpeter@760
|
465 |
_comp_nodes[i].clear();
|
kpeter@760
|
466 |
for (NodeIt n(_gr); n != INVALID; ++n) {
|
kpeter@760
|
467 |
int k = _comp[n];
|
kpeter@760
|
468 |
_comp_nodes[k].push_back(n);
|
kpeter@760
|
469 |
_in_arcs[n].clear();
|
kpeter@760
|
470 |
for (InArcIt a(_gr, n); a != INVALID; ++a) {
|
kpeter@760
|
471 |
if (_comp[_gr.source(a)] == k) _in_arcs[n].push_back(a);
|
kpeter@760
|
472 |
}
|
kpeter@760
|
473 |
}
|
kpeter@758
|
474 |
}
|
kpeter@760
|
475 |
}
|
kpeter@760
|
476 |
|
kpeter@760
|
477 |
// Build the policy graph in the given strongly connected component
|
kpeter@760
|
478 |
// (the out-degree of every node is 1)
|
kpeter@760
|
479 |
bool buildPolicyGraph(int comp) {
|
kpeter@760
|
480 |
_nodes = &(_comp_nodes[comp]);
|
kpeter@760
|
481 |
if (_nodes->size() < 1 ||
|
kpeter@760
|
482 |
(_nodes->size() == 1 && _in_arcs[(*_nodes)[0]].size() == 0)) {
|
kpeter@760
|
483 |
return false;
|
kpeter@758
|
484 |
}
|
kpeter@760
|
485 |
for (int i = 0; i < int(_nodes->size()); ++i) {
|
kpeter@767
|
486 |
_dist[(*_nodes)[i]] = INF;
|
kpeter@760
|
487 |
}
|
kpeter@760
|
488 |
Node u, v;
|
kpeter@760
|
489 |
Arc e;
|
kpeter@760
|
490 |
for (int i = 0; i < int(_nodes->size()); ++i) {
|
kpeter@760
|
491 |
v = (*_nodes)[i];
|
kpeter@760
|
492 |
for (int j = 0; j < int(_in_arcs[v].size()); ++j) {
|
kpeter@760
|
493 |
e = _in_arcs[v][j];
|
kpeter@760
|
494 |
u = _gr.source(e);
|
kpeter@864
|
495 |
if (_cost[e] < _dist[u]) {
|
kpeter@864
|
496 |
_dist[u] = _cost[e];
|
kpeter@760
|
497 |
_policy[u] = e;
|
kpeter@760
|
498 |
}
|
kpeter@758
|
499 |
}
|
kpeter@758
|
500 |
}
|
kpeter@758
|
501 |
return true;
|
kpeter@758
|
502 |
}
|
kpeter@758
|
503 |
|
kpeter@760
|
504 |
// Find the minimum mean cycle in the policy graph
|
kpeter@760
|
505 |
void findPolicyCycle() {
|
kpeter@760
|
506 |
for (int i = 0; i < int(_nodes->size()); ++i) {
|
kpeter@760
|
507 |
_level[(*_nodes)[i]] = -1;
|
kpeter@760
|
508 |
}
|
kpeter@864
|
509 |
LargeCost ccost;
|
kpeter@758
|
510 |
int csize;
|
kpeter@758
|
511 |
Node u, v;
|
kpeter@760
|
512 |
_curr_found = false;
|
kpeter@760
|
513 |
for (int i = 0; i < int(_nodes->size()); ++i) {
|
kpeter@760
|
514 |
u = (*_nodes)[i];
|
kpeter@760
|
515 |
if (_level[u] >= 0) continue;
|
kpeter@760
|
516 |
for (; _level[u] < 0; u = _gr.target(_policy[u])) {
|
kpeter@760
|
517 |
_level[u] = i;
|
kpeter@760
|
518 |
}
|
kpeter@760
|
519 |
if (_level[u] == i) {
|
kpeter@760
|
520 |
// A cycle is found
|
kpeter@864
|
521 |
ccost = _cost[_policy[u]];
|
kpeter@760
|
522 |
csize = 1;
|
kpeter@760
|
523 |
for (v = u; (v = _gr.target(_policy[v])) != u; ) {
|
kpeter@864
|
524 |
ccost += _cost[_policy[v]];
|
kpeter@760
|
525 |
++csize;
|
kpeter@758
|
526 |
}
|
kpeter@760
|
527 |
if ( !_curr_found ||
|
kpeter@864
|
528 |
(ccost * _curr_size < _curr_cost * csize) ) {
|
kpeter@760
|
529 |
_curr_found = true;
|
kpeter@864
|
530 |
_curr_cost = ccost;
|
kpeter@760
|
531 |
_curr_size = csize;
|
kpeter@760
|
532 |
_curr_node = u;
|
kpeter@758
|
533 |
}
|
kpeter@758
|
534 |
}
|
kpeter@758
|
535 |
}
|
kpeter@758
|
536 |
}
|
kpeter@758
|
537 |
|
kpeter@760
|
538 |
// Contract the policy graph and compute node distances
|
kpeter@758
|
539 |
bool computeNodeDistances() {
|
kpeter@760
|
540 |
// Find the component of the main cycle and compute node distances
|
kpeter@760
|
541 |
// using reverse BFS
|
kpeter@760
|
542 |
for (int i = 0; i < int(_nodes->size()); ++i) {
|
kpeter@760
|
543 |
_reached[(*_nodes)[i]] = false;
|
kpeter@760
|
544 |
}
|
kpeter@760
|
545 |
_qfront = _qback = 0;
|
kpeter@760
|
546 |
_queue[0] = _curr_node;
|
kpeter@760
|
547 |
_reached[_curr_node] = true;
|
kpeter@760
|
548 |
_dist[_curr_node] = 0;
|
kpeter@758
|
549 |
Node u, v;
|
kpeter@760
|
550 |
Arc e;
|
kpeter@760
|
551 |
while (_qfront <= _qback) {
|
kpeter@760
|
552 |
v = _queue[_qfront++];
|
kpeter@760
|
553 |
for (int j = 0; j < int(_in_arcs[v].size()); ++j) {
|
kpeter@760
|
554 |
e = _in_arcs[v][j];
|
kpeter@758
|
555 |
u = _gr.source(e);
|
kpeter@760
|
556 |
if (_policy[u] == e && !_reached[u]) {
|
kpeter@760
|
557 |
_reached[u] = true;
|
kpeter@864
|
558 |
_dist[u] = _dist[v] + _cost[e] * _curr_size - _curr_cost;
|
kpeter@760
|
559 |
_queue[++_qback] = u;
|
kpeter@758
|
560 |
}
|
kpeter@758
|
561 |
}
|
kpeter@758
|
562 |
}
|
kpeter@760
|
563 |
|
kpeter@760
|
564 |
// Connect all other nodes to this component and compute node
|
kpeter@760
|
565 |
// distances using reverse BFS
|
kpeter@760
|
566 |
_qfront = 0;
|
kpeter@760
|
567 |
while (_qback < int(_nodes->size())-1) {
|
kpeter@760
|
568 |
v = _queue[_qfront++];
|
kpeter@760
|
569 |
for (int j = 0; j < int(_in_arcs[v].size()); ++j) {
|
kpeter@760
|
570 |
e = _in_arcs[v][j];
|
kpeter@760
|
571 |
u = _gr.source(e);
|
kpeter@760
|
572 |
if (!_reached[u]) {
|
kpeter@760
|
573 |
_reached[u] = true;
|
kpeter@760
|
574 |
_policy[u] = e;
|
kpeter@864
|
575 |
_dist[u] = _dist[v] + _cost[e] * _curr_size - _curr_cost;
|
kpeter@760
|
576 |
_queue[++_qback] = u;
|
kpeter@760
|
577 |
}
|
kpeter@760
|
578 |
}
|
kpeter@760
|
579 |
}
|
kpeter@760
|
580 |
|
kpeter@760
|
581 |
// Improve node distances
|
kpeter@758
|
582 |
bool improved = false;
|
kpeter@760
|
583 |
for (int i = 0; i < int(_nodes->size()); ++i) {
|
kpeter@760
|
584 |
v = (*_nodes)[i];
|
kpeter@760
|
585 |
for (int j = 0; j < int(_in_arcs[v].size()); ++j) {
|
kpeter@760
|
586 |
e = _in_arcs[v][j];
|
kpeter@760
|
587 |
u = _gr.source(e);
|
kpeter@864
|
588 |
LargeCost delta = _dist[v] + _cost[e] * _curr_size - _curr_cost;
|
kpeter@761
|
589 |
if (_tolerance.less(delta, _dist[u])) {
|
kpeter@760
|
590 |
_dist[u] = delta;
|
kpeter@760
|
591 |
_policy[u] = e;
|
kpeter@760
|
592 |
improved = true;
|
kpeter@760
|
593 |
}
|
kpeter@758
|
594 |
}
|
kpeter@758
|
595 |
}
|
kpeter@758
|
596 |
return improved;
|
kpeter@758
|
597 |
}
|
kpeter@758
|
598 |
|
kpeter@864
|
599 |
}; //class HowardMmc
|
kpeter@758
|
600 |
|
kpeter@758
|
601 |
///@}
|
kpeter@758
|
602 |
|
kpeter@758
|
603 |
} //namespace lemon
|
kpeter@758
|
604 |
|
kpeter@864
|
605 |
#endif //LEMON_HOWARD_MMC_H
|