lemon/network_simplex.h
author Peter Kovacs <kpeter@inf.elte.hu>
Mon, 30 Jan 2012 23:24:40 +0100
changeset 1165 16f55008c863
parent 1026 9312d6c89d02
child 1166 d59484d5fc1f
permissions -rw-r--r--
Doc improvements for min cost flow algorithms (#437)
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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_NETWORK_SIMPLEX_H
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#define LEMON_NETWORK_SIMPLEX_H
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/// \ingroup min_cost_flow_algs
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///
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/// \file
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/// \brief Network Simplex algorithm for finding a minimum cost flow.
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#include <vector>
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#include <limits>
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#include <algorithm>
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#include <lemon/core.h>
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#include <lemon/math.h>
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namespace lemon {
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  /// \addtogroup min_cost_flow_algs
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  /// @{
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  /// \brief Implementation of the primal Network Simplex algorithm
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  /// for finding a \ref min_cost_flow "minimum cost flow".
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  ///
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  /// \ref NetworkSimplex implements the primal Network Simplex algorithm
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  /// for finding a \ref min_cost_flow "minimum cost flow"
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  /// \ref amo93networkflows, \ref dantzig63linearprog,
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  /// \ref kellyoneill91netsimplex.
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  /// This algorithm is a highly efficient specialized version of the
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  /// linear programming simplex method directly for the minimum cost
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  /// flow problem.
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  ///
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  /// In general, \ref NetworkSimplex and \ref CostScaling are the fastest
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  /// implementations available in LEMON for solving this problem.
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  /// (For more information, see \ref min_cost_flow_algs "the module page".)
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  /// Furthermore, this class supports both directions of the supply/demand
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  /// inequality constraints. For more information, see \ref SupplyType.
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  ///
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  /// Most of the parameters of the problem (except for the digraph)
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  /// can be given using separate functions, and the algorithm can be
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  /// executed using the \ref run() function. If some parameters are not
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  /// specified, then default values will be used.
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  ///
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  /// \tparam GR The digraph type the algorithm runs on.
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  /// \tparam V The number type used for flow amounts, capacity bounds
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  /// and supply values in the algorithm. By default, it is \c int.
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  /// \tparam C The number type used for costs and potentials in the
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  /// algorithm. By default, it is the same as \c V.
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  ///
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  /// \warning Both \c V and \c C must be signed number types.
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  /// \warning All input data (capacities, supply values, and costs) must
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  /// be integer.
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  ///
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  /// \note %NetworkSimplex provides five different pivot rule
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  /// implementations, from which the most efficient one is used
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  /// by default. For more information, see \ref PivotRule.
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  template <typename GR, typename V = int, typename C = V>
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  class NetworkSimplex
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  {
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  public:
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    /// The type of the flow amounts, capacity bounds and supply values
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    typedef V Value;
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    /// The type of the arc costs
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    typedef C Cost;
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  public:
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    /// \brief Problem type constants for the \c run() function.
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    ///
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    /// Enum type containing the problem type constants that can be
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    /// returned by the \ref run() function of the algorithm.
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    enum ProblemType {
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      /// The problem has no feasible solution (flow).
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      INFEASIBLE,
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      /// The problem has optimal solution (i.e. it is feasible and
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      /// bounded), and the algorithm has found optimal flow and node
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      /// potentials (primal and dual solutions).
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      OPTIMAL,
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      /// The objective function of the problem is unbounded, i.e.
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      /// there is a directed cycle having negative total cost and
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      /// infinite upper bound.
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      UNBOUNDED
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    };
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    /// \brief Constants for selecting the type of the supply constraints.
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    ///
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    /// Enum type containing constants for selecting the supply type,
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    /// i.e. the direction of the inequalities in the supply/demand
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    /// constraints of the \ref min_cost_flow "minimum cost flow problem".
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    ///
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    /// The default supply type is \c GEQ, the \c LEQ type can be
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    /// selected using \ref supplyType().
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    /// The equality form is a special case of both supply types.
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    enum SupplyType {
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      /// This option means that there are <em>"greater or equal"</em>
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      /// supply/demand constraints in the definition of the problem.
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      GEQ,
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      /// This option means that there are <em>"less or equal"</em>
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      /// supply/demand constraints in the definition of the problem.
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      LEQ
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    };
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    /// \brief Constants for selecting the pivot rule.
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    ///
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    /// Enum type containing constants for selecting the pivot rule for
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    /// the \ref run() function.
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    ///
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    /// \ref NetworkSimplex provides five different pivot rule
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    /// implementations that significantly affect the running time
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    /// of the algorithm.
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    /// By default, \ref BLOCK_SEARCH "Block Search" is used, which
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    /// turend out to be the most efficient and the most robust on various
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    /// test inputs.
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    /// However, another pivot rule can be selected using the \ref run()
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    /// function with the proper parameter.
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    enum PivotRule {
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      /// The \e First \e Eligible pivot rule.
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      /// The next eligible arc is selected in a wraparound fashion
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      /// in every iteration.
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      FIRST_ELIGIBLE,
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      /// The \e Best \e Eligible pivot rule.
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      /// The best eligible arc is selected in every iteration.
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      BEST_ELIGIBLE,
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      /// The \e Block \e Search pivot rule.
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      /// A specified number of arcs are examined in every iteration
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      /// in a wraparound fashion and the best eligible arc is selected
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      /// from this block.
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      BLOCK_SEARCH,
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      /// The \e Candidate \e List pivot rule.
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      /// In a major iteration a candidate list is built from eligible arcs
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      /// in a wraparound fashion and in the following minor iterations
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      /// the best eligible arc is selected from this list.
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      CANDIDATE_LIST,
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      /// The \e Altering \e Candidate \e List pivot rule.
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      /// It is a modified version of the Candidate List method.
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      /// It keeps only the several best eligible arcs from the former
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      /// candidate list and extends this list in every iteration.
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      ALTERING_LIST
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    };
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  private:
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    TEMPLATE_DIGRAPH_TYPEDEFS(GR);
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    typedef std::vector<int> IntVector;
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    typedef std::vector<Value> ValueVector;
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    typedef std::vector<Cost> CostVector;
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    typedef std::vector<signed char> CharVector;
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    // Note: vector<signed char> is used instead of vector<ArcState> and
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    // vector<ArcDirection> for efficiency reasons
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    // State constants for arcs
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    enum ArcState {
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      STATE_UPPER = -1,
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      STATE_TREE  =  0,
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      STATE_LOWER =  1
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    };
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    // Direction constants for tree arcs
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    enum ArcDirection {
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      DIR_DOWN = -1,
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      DIR_UP   =  1
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    };
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  private:
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    // Data related to the underlying digraph
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    const GR &_graph;
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    int _node_num;
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    int _arc_num;
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    int _all_arc_num;
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    int _search_arc_num;
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    // Parameters of the problem
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    bool _have_lower;
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    SupplyType _stype;
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    Value _sum_supply;
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    // Data structures for storing the digraph
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    IntNodeMap _node_id;
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    IntArcMap _arc_id;
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    IntVector _source;
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    IntVector _target;
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    bool _arc_mixing;
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    // Node and arc data
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    ValueVector _lower;
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    ValueVector _upper;
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    ValueVector _cap;
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    CostVector _cost;
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    ValueVector _supply;
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    ValueVector _flow;
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    CostVector _pi;
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    // Data for storing the spanning tree structure
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    IntVector _parent;
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    IntVector _pred;
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    IntVector _thread;
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    IntVector _rev_thread;
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    IntVector _succ_num;
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    IntVector _last_succ;
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    CharVector _pred_dir;
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    CharVector _state;
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    IntVector _dirty_revs;
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    int _root;
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    // Temporary data used in the current pivot iteration
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    int in_arc, join, u_in, v_in, u_out, v_out;
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    Value delta;
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    const Value MAX;
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  public:
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    /// \brief Constant for infinite upper bounds (capacities).
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    ///
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    /// Constant for infinite upper bounds (capacities).
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    /// It is \c std::numeric_limits<Value>::infinity() if available,
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    /// \c std::numeric_limits<Value>::max() otherwise.
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    const Value INF;
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  private:
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    // Implementation of the First Eligible pivot rule
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    class FirstEligiblePivotRule
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    {
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    private:
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      // References to the NetworkSimplex class
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      const IntVector  &_source;
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      const IntVector  &_target;
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      const CostVector &_cost;
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      const CharVector &_state;
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      const CostVector &_pi;
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      int &_in_arc;
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      int _search_arc_num;
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      // Pivot rule data
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      int _next_arc;
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    public:
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      // Constructor
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      FirstEligiblePivotRule(NetworkSimplex &ns) :
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        _source(ns._source), _target(ns._target),
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        _cost(ns._cost), _state(ns._state), _pi(ns._pi),
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        _in_arc(ns.in_arc), _search_arc_num(ns._search_arc_num),
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        _next_arc(0)
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      {}
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      // Find next entering arc
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      bool findEnteringArc() {
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        Cost c;
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        for (int e = _next_arc; e != _search_arc_num; ++e) {
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          c = _state[e] * (_cost[e] + _pi[_source[e]] - _pi[_target[e]]);
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          if (c < 0) {
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            _in_arc = e;
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            _next_arc = e + 1;
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            return true;
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          }
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        }
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        for (int e = 0; e != _next_arc; ++e) {
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          c = _state[e] * (_cost[e] + _pi[_source[e]] - _pi[_target[e]]);
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          if (c < 0) {
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            _in_arc = e;
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            _next_arc = e + 1;
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            return true;
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          }
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        }
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        return false;
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      }
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    }; //class FirstEligiblePivotRule
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    // Implementation of the Best Eligible pivot rule
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    class BestEligiblePivotRule
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    {
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    private:
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      // References to the NetworkSimplex class
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      const IntVector  &_source;
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      const IntVector  &_target;
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      const CostVector &_cost;
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      const CharVector &_state;
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      const CostVector &_pi;
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      int &_in_arc;
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      int _search_arc_num;
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    public:
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      // Constructor
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      BestEligiblePivotRule(NetworkSimplex &ns) :
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        _source(ns._source), _target(ns._target),
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        _cost(ns._cost), _state(ns._state), _pi(ns._pi),
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        _in_arc(ns.in_arc), _search_arc_num(ns._search_arc_num)
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      {}
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      // Find next entering arc
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      bool findEnteringArc() {
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        Cost c, min = 0;
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        for (int e = 0; e != _search_arc_num; ++e) {
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          c = _state[e] * (_cost[e] + _pi[_source[e]] - _pi[_target[e]]);
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          if (c < min) {
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            min = c;
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            _in_arc = e;
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          }
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        }
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        return min < 0;
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      }
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    }; //class BestEligiblePivotRule
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    // Implementation of the Block Search pivot rule
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    class BlockSearchPivotRule
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    {
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    private:
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      // References to the NetworkSimplex class
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      const IntVector  &_source;
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      const IntVector  &_target;
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      const CostVector &_cost;
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      const CharVector &_state;
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      const CostVector &_pi;
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      int &_in_arc;
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      int _search_arc_num;
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      // Pivot rule data
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      int _block_size;
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      int _next_arc;
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    public:
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      // Constructor
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      BlockSearchPivotRule(NetworkSimplex &ns) :
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        _source(ns._source), _target(ns._target),
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        _cost(ns._cost), _state(ns._state), _pi(ns._pi),
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        _in_arc(ns.in_arc), _search_arc_num(ns._search_arc_num),
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        _next_arc(0)
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      {
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        // The main parameters of the pivot rule
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        const double BLOCK_SIZE_FACTOR = 1.0;
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        const int MIN_BLOCK_SIZE = 10;
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        _block_size = std::max( int(BLOCK_SIZE_FACTOR *
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                                    std::sqrt(double(_search_arc_num))),
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                                MIN_BLOCK_SIZE );
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      }
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      // Find next entering arc
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      bool findEnteringArc() {
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        Cost c, min = 0;
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        int cnt = _block_size;
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        int e;
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        for (e = _next_arc; e != _search_arc_num; ++e) {
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          c = _state[e] * (_cost[e] + _pi[_source[e]] - _pi[_target[e]]);
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          if (c < min) {
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            min = c;
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            _in_arc = e;
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          }
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          if (--cnt == 0) {
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            if (min < 0) goto search_end;
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            cnt = _block_size;
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          }
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        }
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        for (e = 0; e != _next_arc; ++e) {
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          c = _state[e] * (_cost[e] + _pi[_source[e]] - _pi[_target[e]]);
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          if (c < min) {
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            min = c;
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            _in_arc = e;
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          }
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          if (--cnt == 0) {
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            if (min < 0) goto search_end;
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            cnt = _block_size;
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          }
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        }
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        if (min >= 0) return false;
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      search_end:
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        _next_arc = e;
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        return true;
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      }
kpeter@648
   407
kpeter@648
   408
    }; //class BlockSearchPivotRule
kpeter@648
   409
kpeter@648
   410
kpeter@652
   411
    // Implementation of the Candidate List pivot rule
kpeter@648
   412
    class CandidateListPivotRule
kpeter@648
   413
    {
kpeter@648
   414
    private:
kpeter@648
   415
kpeter@648
   416
      // References to the NetworkSimplex class
kpeter@648
   417
      const IntVector  &_source;
kpeter@648
   418
      const IntVector  &_target;
kpeter@654
   419
      const CostVector &_cost;
kpeter@990
   420
      const CharVector &_state;
kpeter@654
   421
      const CostVector &_pi;
kpeter@648
   422
      int &_in_arc;
kpeter@710
   423
      int _search_arc_num;
kpeter@648
   424
kpeter@648
   425
      // Pivot rule data
kpeter@648
   426
      IntVector _candidates;
kpeter@648
   427
      int _list_length, _minor_limit;
kpeter@648
   428
      int _curr_length, _minor_count;
kpeter@648
   429
      int _next_arc;
kpeter@648
   430
kpeter@648
   431
    public:
kpeter@648
   432
kpeter@648
   433
      /// Constructor
kpeter@648
   434
      CandidateListPivotRule(NetworkSimplex &ns) :
kpeter@650
   435
        _source(ns._source), _target(ns._target),
kpeter@648
   436
        _cost(ns._cost), _state(ns._state), _pi(ns._pi),
kpeter@710
   437
        _in_arc(ns.in_arc), _search_arc_num(ns._search_arc_num),
kpeter@710
   438
        _next_arc(0)
kpeter@648
   439
      {
kpeter@648
   440
        // The main parameters of the pivot rule
kpeter@774
   441
        const double LIST_LENGTH_FACTOR = 0.25;
kpeter@648
   442
        const int MIN_LIST_LENGTH = 10;
kpeter@648
   443
        const double MINOR_LIMIT_FACTOR = 0.1;
kpeter@648
   444
        const int MIN_MINOR_LIMIT = 3;
kpeter@648
   445
alpar@659
   446
        _list_length = std::max( int(LIST_LENGTH_FACTOR *
kpeter@710
   447
                                     std::sqrt(double(_search_arc_num))),
kpeter@648
   448
                                 MIN_LIST_LENGTH );
kpeter@648
   449
        _minor_limit = std::max( int(MINOR_LIMIT_FACTOR * _list_length),
kpeter@648
   450
                                 MIN_MINOR_LIMIT );
kpeter@648
   451
        _curr_length = _minor_count = 0;
kpeter@648
   452
        _candidates.resize(_list_length);
kpeter@648
   453
      }
kpeter@648
   454
kpeter@648
   455
      /// Find next entering arc
kpeter@648
   456
      bool findEnteringArc() {
kpeter@654
   457
        Cost min, c;
kpeter@774
   458
        int e;
kpeter@648
   459
        if (_curr_length > 0 && _minor_count < _minor_limit) {
kpeter@648
   460
          // Minor iteration: select the best eligible arc from the
kpeter@648
   461
          // current candidate list
kpeter@648
   462
          ++_minor_count;
kpeter@648
   463
          min = 0;
kpeter@648
   464
          for (int i = 0; i < _curr_length; ++i) {
kpeter@648
   465
            e = _candidates[i];
kpeter@648
   466
            c = _state[e] * (_cost[e] + _pi[_source[e]] - _pi[_target[e]]);
kpeter@648
   467
            if (c < min) {
kpeter@648
   468
              min = c;
kpeter@774
   469
              _in_arc = e;
kpeter@648
   470
            }
kpeter@774
   471
            else if (c >= 0) {
kpeter@648
   472
              _candidates[i--] = _candidates[--_curr_length];
kpeter@648
   473
            }
kpeter@648
   474
          }
kpeter@774
   475
          if (min < 0) return true;
kpeter@648
   476
        }
kpeter@648
   477
kpeter@648
   478
        // Major iteration: build a new candidate list
kpeter@648
   479
        min = 0;
kpeter@648
   480
        _curr_length = 0;
kpeter@910
   481
        for (e = _next_arc; e != _search_arc_num; ++e) {
kpeter@648
   482
          c = _state[e] * (_cost[e] + _pi[_source[e]] - _pi[_target[e]]);
kpeter@648
   483
          if (c < 0) {
kpeter@648
   484
            _candidates[_curr_length++] = e;
kpeter@648
   485
            if (c < min) {
kpeter@648
   486
              min = c;
kpeter@774
   487
              _in_arc = e;
kpeter@648
   488
            }
kpeter@774
   489
            if (_curr_length == _list_length) goto search_end;
kpeter@648
   490
          }
kpeter@648
   491
        }
kpeter@910
   492
        for (e = 0; e != _next_arc; ++e) {
kpeter@774
   493
          c = _state[e] * (_cost[e] + _pi[_source[e]] - _pi[_target[e]]);
kpeter@774
   494
          if (c < 0) {
kpeter@774
   495
            _candidates[_curr_length++] = e;
kpeter@774
   496
            if (c < min) {
kpeter@774
   497
              min = c;
kpeter@774
   498
              _in_arc = e;
kpeter@648
   499
            }
kpeter@774
   500
            if (_curr_length == _list_length) goto search_end;
kpeter@648
   501
          }
kpeter@648
   502
        }
kpeter@648
   503
        if (_curr_length == 0) return false;
alpar@956
   504
alpar@956
   505
      search_end:
kpeter@648
   506
        _minor_count = 1;
kpeter@648
   507
        _next_arc = e;
kpeter@648
   508
        return true;
kpeter@648
   509
      }
kpeter@648
   510
kpeter@648
   511
    }; //class CandidateListPivotRule
kpeter@648
   512
kpeter@648
   513
kpeter@652
   514
    // Implementation of the Altering Candidate List pivot rule
kpeter@648
   515
    class AlteringListPivotRule
kpeter@648
   516
    {
kpeter@648
   517
    private:
kpeter@648
   518
kpeter@648
   519
      // References to the NetworkSimplex class
kpeter@648
   520
      const IntVector  &_source;
kpeter@648
   521
      const IntVector  &_target;
kpeter@654
   522
      const CostVector &_cost;
kpeter@990
   523
      const CharVector &_state;
kpeter@654
   524
      const CostVector &_pi;
kpeter@648
   525
      int &_in_arc;
kpeter@710
   526
      int _search_arc_num;
kpeter@648
   527
kpeter@648
   528
      // Pivot rule data
kpeter@648
   529
      int _block_size, _head_length, _curr_length;
kpeter@648
   530
      int _next_arc;
kpeter@648
   531
      IntVector _candidates;
kpeter@654
   532
      CostVector _cand_cost;
kpeter@648
   533
kpeter@648
   534
      // Functor class to compare arcs during sort of the candidate list
kpeter@648
   535
      class SortFunc
kpeter@648
   536
      {
kpeter@648
   537
      private:
kpeter@654
   538
        const CostVector &_map;
kpeter@648
   539
      public:
kpeter@654
   540
        SortFunc(const CostVector &map) : _map(map) {}
kpeter@648
   541
        bool operator()(int left, int right) {
kpeter@648
   542
          return _map[left] > _map[right];
kpeter@648
   543
        }
kpeter@648
   544
      };
kpeter@648
   545
kpeter@648
   546
      SortFunc _sort_func;
kpeter@648
   547
kpeter@648
   548
    public:
kpeter@648
   549
kpeter@652
   550
      // Constructor
kpeter@648
   551
      AlteringListPivotRule(NetworkSimplex &ns) :
kpeter@650
   552
        _source(ns._source), _target(ns._target),
kpeter@648
   553
        _cost(ns._cost), _state(ns._state), _pi(ns._pi),
kpeter@710
   554
        _in_arc(ns.in_arc), _search_arc_num(ns._search_arc_num),
kpeter@710
   555
        _next_arc(0), _cand_cost(ns._search_arc_num), _sort_func(_cand_cost)
kpeter@648
   556
      {
kpeter@648
   557
        // The main parameters of the pivot rule
kpeter@774
   558
        const double BLOCK_SIZE_FACTOR = 1.0;
kpeter@648
   559
        const int MIN_BLOCK_SIZE = 10;
kpeter@648
   560
        const double HEAD_LENGTH_FACTOR = 0.1;
kpeter@648
   561
        const int MIN_HEAD_LENGTH = 3;
kpeter@648
   562
alpar@659
   563
        _block_size = std::max( int(BLOCK_SIZE_FACTOR *
kpeter@710
   564
                                    std::sqrt(double(_search_arc_num))),
kpeter@648
   565
                                MIN_BLOCK_SIZE );
kpeter@648
   566
        _head_length = std::max( int(HEAD_LENGTH_FACTOR * _block_size),
kpeter@648
   567
                                 MIN_HEAD_LENGTH );
kpeter@648
   568
        _candidates.resize(_head_length + _block_size);
kpeter@648
   569
        _curr_length = 0;
kpeter@648
   570
      }
kpeter@648
   571
kpeter@652
   572
      // Find next entering arc
kpeter@648
   573
      bool findEnteringArc() {
kpeter@648
   574
        // Check the current candidate list
kpeter@648
   575
        int e;
kpeter@990
   576
        Cost c;
kpeter@910
   577
        for (int i = 0; i != _curr_length; ++i) {
kpeter@648
   578
          e = _candidates[i];
kpeter@990
   579
          c = _state[e] * (_cost[e] + _pi[_source[e]] - _pi[_target[e]]);
kpeter@990
   580
          if (c < 0) {
kpeter@990
   581
            _cand_cost[e] = c;
kpeter@990
   582
          } else {
kpeter@648
   583
            _candidates[i--] = _candidates[--_curr_length];
kpeter@648
   584
          }
kpeter@648
   585
        }
kpeter@648
   586
kpeter@648
   587
        // Extend the list
kpeter@648
   588
        int cnt = _block_size;
kpeter@648
   589
        int limit = _head_length;
kpeter@648
   590
kpeter@910
   591
        for (e = _next_arc; e != _search_arc_num; ++e) {
kpeter@990
   592
          c = _state[e] * (_cost[e] + _pi[_source[e]] - _pi[_target[e]]);
kpeter@990
   593
          if (c < 0) {
kpeter@990
   594
            _cand_cost[e] = c;
kpeter@648
   595
            _candidates[_curr_length++] = e;
kpeter@648
   596
          }
kpeter@648
   597
          if (--cnt == 0) {
kpeter@774
   598
            if (_curr_length > limit) goto search_end;
kpeter@648
   599
            limit = 0;
kpeter@648
   600
            cnt = _block_size;
kpeter@648
   601
          }
kpeter@648
   602
        }
kpeter@910
   603
        for (e = 0; e != _next_arc; ++e) {
kpeter@774
   604
          _cand_cost[e] = _state[e] *
kpeter@774
   605
            (_cost[e] + _pi[_source[e]] - _pi[_target[e]]);
kpeter@774
   606
          if (_cand_cost[e] < 0) {
kpeter@774
   607
            _candidates[_curr_length++] = e;
kpeter@774
   608
          }
kpeter@774
   609
          if (--cnt == 0) {
kpeter@774
   610
            if (_curr_length > limit) goto search_end;
kpeter@774
   611
            limit = 0;
kpeter@774
   612
            cnt = _block_size;
kpeter@648
   613
          }
kpeter@648
   614
        }
kpeter@648
   615
        if (_curr_length == 0) return false;
alpar@956
   616
kpeter@774
   617
      search_end:
kpeter@648
   618
kpeter@648
   619
        // Make heap of the candidate list (approximating a partial sort)
kpeter@648
   620
        make_heap( _candidates.begin(), _candidates.begin() + _curr_length,
kpeter@648
   621
                   _sort_func );
kpeter@648
   622
kpeter@648
   623
        // Pop the first element of the heap
kpeter@648
   624
        _in_arc = _candidates[0];
kpeter@774
   625
        _next_arc = e;
kpeter@648
   626
        pop_heap( _candidates.begin(), _candidates.begin() + _curr_length,
kpeter@648
   627
                  _sort_func );
kpeter@648
   628
        _curr_length = std::min(_head_length, _curr_length - 1);
kpeter@648
   629
        return true;
kpeter@648
   630
      }
kpeter@648
   631
kpeter@648
   632
    }; //class AlteringListPivotRule
kpeter@648
   633
kpeter@648
   634
  public:
kpeter@648
   635
kpeter@652
   636
    /// \brief Constructor.
kpeter@648
   637
    ///
kpeter@656
   638
    /// The constructor of the class.
kpeter@648
   639
    ///
kpeter@650
   640
    /// \param graph The digraph the algorithm runs on.
kpeter@991
   641
    /// \param arc_mixing Indicate if the arcs will be stored in a
alpar@956
   642
    /// mixed order in the internal data structure.
kpeter@991
   643
    /// In general, it leads to similar performance as using the original
kpeter@991
   644
    /// arc order, but it makes the algorithm more robust and in special
kpeter@991
   645
    /// cases, even significantly faster. Therefore, it is enabled by default.
kpeter@991
   646
    NetworkSimplex(const GR& graph, bool arc_mixing = true) :
kpeter@689
   647
      _graph(graph), _node_id(graph), _arc_id(graph),
kpeter@898
   648
      _arc_mixing(arc_mixing),
kpeter@877
   649
      MAX(std::numeric_limits<Value>::max()),
kpeter@688
   650
      INF(std::numeric_limits<Value>::has_infinity ?
kpeter@877
   651
          std::numeric_limits<Value>::infinity() : MAX)
kpeter@652
   652
    {
kpeter@878
   653
      // Check the number types
kpeter@688
   654
      LEMON_ASSERT(std::numeric_limits<Value>::is_signed,
kpeter@687
   655
        "The flow type of NetworkSimplex must be signed");
kpeter@687
   656
      LEMON_ASSERT(std::numeric_limits<Cost>::is_signed,
kpeter@687
   657
        "The cost type of NetworkSimplex must be signed");
kpeter@648
   658
kpeter@898
   659
      // Reset data structures
kpeter@776
   660
      reset();
kpeter@648
   661
    }
kpeter@648
   662
kpeter@656
   663
    /// \name Parameters
kpeter@656
   664
    /// The parameters of the algorithm can be specified using these
kpeter@656
   665
    /// functions.
kpeter@656
   666
kpeter@656
   667
    /// @{
kpeter@656
   668
kpeter@652
   669
    /// \brief Set the lower bounds on the arcs.
kpeter@652
   670
    ///
kpeter@652
   671
    /// This function sets the lower bounds on the arcs.
kpeter@687
   672
    /// If it is not used before calling \ref run(), the lower bounds
kpeter@687
   673
    /// will be set to zero on all arcs.
kpeter@652
   674
    ///
kpeter@652
   675
    /// \param map An arc map storing the lower bounds.
kpeter@688
   676
    /// Its \c Value type must be convertible to the \c Value type
kpeter@652
   677
    /// of the algorithm.
kpeter@652
   678
    ///
kpeter@652
   679
    /// \return <tt>(*this)</tt>
kpeter@687
   680
    template <typename LowerMap>
kpeter@687
   681
    NetworkSimplex& lowerMap(const LowerMap& map) {
kpeter@689
   682
      _have_lower = true;
kpeter@652
   683
      for (ArcIt a(_graph); a != INVALID; ++a) {
kpeter@689
   684
        _lower[_arc_id[a]] = map[a];
kpeter@652
   685
      }
kpeter@652
   686
      return *this;
kpeter@652
   687
    }
kpeter@652
   688
kpeter@652
   689
    /// \brief Set the upper bounds (capacities) on the arcs.
kpeter@652
   690
    ///
kpeter@652
   691
    /// This function sets the upper bounds (capacities) on the arcs.
kpeter@687
   692
    /// If it is not used before calling \ref run(), the upper bounds
kpeter@687
   693
    /// will be set to \ref INF on all arcs (i.e. the flow value will be
kpeter@878
   694
    /// unbounded from above).
kpeter@652
   695
    ///
kpeter@652
   696
    /// \param map An arc map storing the upper bounds.
kpeter@688
   697
    /// Its \c Value type must be convertible to the \c Value type
kpeter@652
   698
    /// of the algorithm.
kpeter@652
   699
    ///
kpeter@652
   700
    /// \return <tt>(*this)</tt>
kpeter@687
   701
    template<typename UpperMap>
kpeter@687
   702
    NetworkSimplex& upperMap(const UpperMap& map) {
kpeter@652
   703
      for (ArcIt a(_graph); a != INVALID; ++a) {
kpeter@689
   704
        _upper[_arc_id[a]] = map[a];
kpeter@652
   705
      }
kpeter@652
   706
      return *this;
kpeter@652
   707
    }
kpeter@652
   708
kpeter@652
   709
    /// \brief Set the costs of the arcs.
kpeter@652
   710
    ///
kpeter@652
   711
    /// This function sets the costs of the arcs.
kpeter@652
   712
    /// If it is not used before calling \ref run(), the costs
kpeter@652
   713
    /// will be set to \c 1 on all arcs.
kpeter@652
   714
    ///
kpeter@652
   715
    /// \param map An arc map storing the costs.
kpeter@654
   716
    /// Its \c Value type must be convertible to the \c Cost type
kpeter@652
   717
    /// of the algorithm.
kpeter@652
   718
    ///
kpeter@652
   719
    /// \return <tt>(*this)</tt>
kpeter@687
   720
    template<typename CostMap>
kpeter@687
   721
    NetworkSimplex& costMap(const CostMap& map) {
kpeter@652
   722
      for (ArcIt a(_graph); a != INVALID; ++a) {
kpeter@689
   723
        _cost[_arc_id[a]] = map[a];
kpeter@652
   724
      }
kpeter@652
   725
      return *this;
kpeter@652
   726
    }
kpeter@652
   727
kpeter@652
   728
    /// \brief Set the supply values of the nodes.
kpeter@652
   729
    ///
kpeter@652
   730
    /// This function sets the supply values of the nodes.
kpeter@652
   731
    /// If neither this function nor \ref stSupply() is used before
kpeter@652
   732
    /// calling \ref run(), the supply of each node will be set to zero.
kpeter@652
   733
    ///
kpeter@652
   734
    /// \param map A node map storing the supply values.
kpeter@688
   735
    /// Its \c Value type must be convertible to the \c Value type
kpeter@652
   736
    /// of the algorithm.
kpeter@652
   737
    ///
kpeter@652
   738
    /// \return <tt>(*this)</tt>
kpeter@1023
   739
    ///
kpeter@1023
   740
    /// \sa supplyType()
kpeter@687
   741
    template<typename SupplyMap>
kpeter@687
   742
    NetworkSimplex& supplyMap(const SupplyMap& map) {
kpeter@652
   743
      for (NodeIt n(_graph); n != INVALID; ++n) {
kpeter@689
   744
        _supply[_node_id[n]] = map[n];
kpeter@652
   745
      }
kpeter@652
   746
      return *this;
kpeter@652
   747
    }
kpeter@652
   748
kpeter@652
   749
    /// \brief Set single source and target nodes and a supply value.
kpeter@652
   750
    ///
kpeter@652
   751
    /// This function sets a single source node and a single target node
kpeter@652
   752
    /// and the required flow value.
kpeter@652
   753
    /// If neither this function nor \ref supplyMap() is used before
kpeter@652
   754
    /// calling \ref run(), the supply of each node will be set to zero.
kpeter@652
   755
    ///
kpeter@687
   756
    /// Using this function has the same effect as using \ref supplyMap()
kpeter@1023
   757
    /// with a map in which \c k is assigned to \c s, \c -k is
kpeter@687
   758
    /// assigned to \c t and all other nodes have zero supply value.
kpeter@687
   759
    ///
kpeter@652
   760
    /// \param s The source node.
kpeter@652
   761
    /// \param t The target node.
kpeter@652
   762
    /// \param k The required amount of flow from node \c s to node \c t
kpeter@652
   763
    /// (i.e. the supply of \c s and the demand of \c t).
kpeter@652
   764
    ///
kpeter@652
   765
    /// \return <tt>(*this)</tt>
kpeter@688
   766
    NetworkSimplex& stSupply(const Node& s, const Node& t, Value k) {
kpeter@689
   767
      for (int i = 0; i != _node_num; ++i) {
kpeter@689
   768
        _supply[i] = 0;
kpeter@689
   769
      }
kpeter@689
   770
      _supply[_node_id[s]] =  k;
kpeter@689
   771
      _supply[_node_id[t]] = -k;
kpeter@652
   772
      return *this;
kpeter@652
   773
    }
alpar@956
   774
kpeter@687
   775
    /// \brief Set the type of the supply constraints.
kpeter@656
   776
    ///
kpeter@687
   777
    /// This function sets the type of the supply/demand constraints.
kpeter@687
   778
    /// If it is not used before calling \ref run(), the \ref GEQ supply
kpeter@656
   779
    /// type will be used.
kpeter@656
   780
    ///
kpeter@833
   781
    /// For more information, see \ref SupplyType.
kpeter@656
   782
    ///
kpeter@656
   783
    /// \return <tt>(*this)</tt>
kpeter@687
   784
    NetworkSimplex& supplyType(SupplyType supply_type) {
kpeter@687
   785
      _stype = supply_type;
kpeter@656
   786
      return *this;
kpeter@656
   787
    }
kpeter@652
   788
kpeter@656
   789
    /// @}
kpeter@648
   790
kpeter@652
   791
    /// \name Execution Control
kpeter@652
   792
    /// The algorithm can be executed using \ref run().
kpeter@652
   793
kpeter@648
   794
    /// @{
kpeter@648
   795
kpeter@648
   796
    /// \brief Run the algorithm.
kpeter@648
   797
    ///
kpeter@648
   798
    /// This function runs the algorithm.
kpeter@656
   799
    /// The paramters can be specified using functions \ref lowerMap(),
alpar@956
   800
    /// \ref upperMap(), \ref costMap(), \ref supplyMap(), \ref stSupply(),
kpeter@689
   801
    /// \ref supplyType().
kpeter@656
   802
    /// For example,
kpeter@652
   803
    /// \code
kpeter@652
   804
    ///   NetworkSimplex<ListDigraph> ns(graph);
kpeter@687
   805
    ///   ns.lowerMap(lower).upperMap(upper).costMap(cost)
kpeter@652
   806
    ///     .supplyMap(sup).run();
kpeter@652
   807
    /// \endcode
kpeter@648
   808
    ///
kpeter@898
   809
    /// This function can be called more than once. All the given parameters
kpeter@898
   810
    /// are kept for the next call, unless \ref resetParams() or \ref reset()
kpeter@898
   811
    /// is used, thus only the modified parameters have to be set again.
kpeter@898
   812
    /// If the underlying digraph was also modified after the construction
kpeter@898
   813
    /// of the class (or the last \ref reset() call), then the \ref reset()
kpeter@898
   814
    /// function must be called.
kpeter@653
   815
    ///
kpeter@652
   816
    /// \param pivot_rule The pivot rule that will be used during the
kpeter@833
   817
    /// algorithm. For more information, see \ref PivotRule.
kpeter@648
   818
    ///
kpeter@687
   819
    /// \return \c INFEASIBLE if no feasible flow exists,
kpeter@687
   820
    /// \n \c OPTIMAL if the problem has optimal solution
kpeter@687
   821
    /// (i.e. it is feasible and bounded), and the algorithm has found
kpeter@687
   822
    /// optimal flow and node potentials (primal and dual solutions),
kpeter@687
   823
    /// \n \c UNBOUNDED if the objective function of the problem is
kpeter@687
   824
    /// unbounded, i.e. there is a directed cycle having negative total
kpeter@687
   825
    /// cost and infinite upper bound.
kpeter@687
   826
    ///
kpeter@687
   827
    /// \see ProblemType, PivotRule
kpeter@898
   828
    /// \see resetParams(), reset()
kpeter@687
   829
    ProblemType run(PivotRule pivot_rule = BLOCK_SEARCH) {
kpeter@687
   830
      if (!init()) return INFEASIBLE;
kpeter@687
   831
      return start(pivot_rule);
kpeter@648
   832
    }
kpeter@648
   833
kpeter@653
   834
    /// \brief Reset all the parameters that have been given before.
kpeter@653
   835
    ///
kpeter@653
   836
    /// This function resets all the paramaters that have been given
kpeter@656
   837
    /// before using functions \ref lowerMap(), \ref upperMap(),
kpeter@689
   838
    /// \ref costMap(), \ref supplyMap(), \ref stSupply(), \ref supplyType().
kpeter@653
   839
    ///
kpeter@898
   840
    /// It is useful for multiple \ref run() calls. Basically, all the given
kpeter@898
   841
    /// parameters are kept for the next \ref run() call, unless
kpeter@898
   842
    /// \ref resetParams() or \ref reset() is used.
kpeter@898
   843
    /// If the underlying digraph was also modified after the construction
kpeter@898
   844
    /// of the class or the last \ref reset() call, then the \ref reset()
kpeter@898
   845
    /// function must be used, otherwise \ref resetParams() is sufficient.
kpeter@653
   846
    ///
kpeter@653
   847
    /// For example,
kpeter@653
   848
    /// \code
kpeter@653
   849
    ///   NetworkSimplex<ListDigraph> ns(graph);
kpeter@653
   850
    ///
kpeter@653
   851
    ///   // First run
kpeter@687
   852
    ///   ns.lowerMap(lower).upperMap(upper).costMap(cost)
kpeter@653
   853
    ///     .supplyMap(sup).run();
kpeter@653
   854
    ///
kpeter@898
   855
    ///   // Run again with modified cost map (resetParams() is not called,
kpeter@653
   856
    ///   // so only the cost map have to be set again)
kpeter@653
   857
    ///   cost[e] += 100;
kpeter@653
   858
    ///   ns.costMap(cost).run();
kpeter@653
   859
    ///
kpeter@898
   860
    ///   // Run again from scratch using resetParams()
kpeter@653
   861
    ///   // (the lower bounds will be set to zero on all arcs)
kpeter@898
   862
    ///   ns.resetParams();
kpeter@687
   863
    ///   ns.upperMap(capacity).costMap(cost)
kpeter@653
   864
    ///     .supplyMap(sup).run();
kpeter@653
   865
    /// \endcode
kpeter@653
   866
    ///
kpeter@653
   867
    /// \return <tt>(*this)</tt>
kpeter@898
   868
    ///
kpeter@898
   869
    /// \see reset(), run()
kpeter@898
   870
    NetworkSimplex& resetParams() {
kpeter@689
   871
      for (int i = 0; i != _node_num; ++i) {
kpeter@689
   872
        _supply[i] = 0;
kpeter@689
   873
      }
kpeter@689
   874
      for (int i = 0; i != _arc_num; ++i) {
kpeter@689
   875
        _lower[i] = 0;
kpeter@689
   876
        _upper[i] = INF;
kpeter@689
   877
        _cost[i] = 1;
kpeter@689
   878
      }
kpeter@689
   879
      _have_lower = false;
kpeter@687
   880
      _stype = GEQ;
kpeter@653
   881
      return *this;
kpeter@653
   882
    }
kpeter@653
   883
kpeter@898
   884
    /// \brief Reset the internal data structures and all the parameters
kpeter@898
   885
    /// that have been given before.
kpeter@898
   886
    ///
kpeter@898
   887
    /// This function resets the internal data structures and all the
kpeter@898
   888
    /// paramaters that have been given before using functions \ref lowerMap(),
kpeter@898
   889
    /// \ref upperMap(), \ref costMap(), \ref supplyMap(), \ref stSupply(),
kpeter@898
   890
    /// \ref supplyType().
kpeter@898
   891
    ///
kpeter@898
   892
    /// It is useful for multiple \ref run() calls. Basically, all the given
kpeter@898
   893
    /// parameters are kept for the next \ref run() call, unless
kpeter@898
   894
    /// \ref resetParams() or \ref reset() is used.
kpeter@898
   895
    /// If the underlying digraph was also modified after the construction
kpeter@898
   896
    /// of the class or the last \ref reset() call, then the \ref reset()
kpeter@898
   897
    /// function must be used, otherwise \ref resetParams() is sufficient.
kpeter@898
   898
    ///
kpeter@898
   899
    /// See \ref resetParams() for examples.
kpeter@898
   900
    ///
kpeter@898
   901
    /// \return <tt>(*this)</tt>
kpeter@898
   902
    ///
kpeter@898
   903
    /// \see resetParams(), run()
kpeter@898
   904
    NetworkSimplex& reset() {
kpeter@898
   905
      // Resize vectors
kpeter@898
   906
      _node_num = countNodes(_graph);
kpeter@898
   907
      _arc_num = countArcs(_graph);
kpeter@898
   908
      int all_node_num = _node_num + 1;
kpeter@898
   909
      int max_arc_num = _arc_num + 2 * _node_num;
kpeter@898
   910
kpeter@898
   911
      _source.resize(max_arc_num);
kpeter@898
   912
      _target.resize(max_arc_num);
kpeter@898
   913
kpeter@898
   914
      _lower.resize(_arc_num);
kpeter@898
   915
      _upper.resize(_arc_num);
kpeter@898
   916
      _cap.resize(max_arc_num);
kpeter@898
   917
      _cost.resize(max_arc_num);
kpeter@898
   918
      _supply.resize(all_node_num);
kpeter@898
   919
      _flow.resize(max_arc_num);
kpeter@898
   920
      _pi.resize(all_node_num);
kpeter@898
   921
kpeter@898
   922
      _parent.resize(all_node_num);
kpeter@898
   923
      _pred.resize(all_node_num);
kpeter@990
   924
      _pred_dir.resize(all_node_num);
kpeter@898
   925
      _thread.resize(all_node_num);
kpeter@898
   926
      _rev_thread.resize(all_node_num);
kpeter@898
   927
      _succ_num.resize(all_node_num);
kpeter@898
   928
      _last_succ.resize(all_node_num);
kpeter@898
   929
      _state.resize(max_arc_num);
kpeter@898
   930
kpeter@898
   931
      // Copy the graph
kpeter@898
   932
      int i = 0;
kpeter@898
   933
      for (NodeIt n(_graph); n != INVALID; ++n, ++i) {
kpeter@898
   934
        _node_id[n] = i;
kpeter@898
   935
      }
kpeter@898
   936
      if (_arc_mixing) {
kpeter@898
   937
        // Store the arcs in a mixed order
kpeter@991
   938
        const int skip = std::max(_arc_num / _node_num, 3);
kpeter@898
   939
        int i = 0, j = 0;
kpeter@898
   940
        for (ArcIt a(_graph); a != INVALID; ++a) {
kpeter@898
   941
          _arc_id[a] = i;
kpeter@898
   942
          _source[i] = _node_id[_graph.source(a)];
kpeter@898
   943
          _target[i] = _node_id[_graph.target(a)];
kpeter@991
   944
          if ((i += skip) >= _arc_num) i = ++j;
kpeter@898
   945
        }
kpeter@898
   946
      } else {
kpeter@898
   947
        // Store the arcs in the original order
kpeter@898
   948
        int i = 0;
kpeter@898
   949
        for (ArcIt a(_graph); a != INVALID; ++a, ++i) {
kpeter@898
   950
          _arc_id[a] = i;
kpeter@898
   951
          _source[i] = _node_id[_graph.source(a)];
kpeter@898
   952
          _target[i] = _node_id[_graph.target(a)];
kpeter@898
   953
        }
kpeter@898
   954
      }
alpar@956
   955
kpeter@898
   956
      // Reset parameters
kpeter@898
   957
      resetParams();
kpeter@898
   958
      return *this;
kpeter@898
   959
    }
alpar@956
   960
kpeter@648
   961
    /// @}
kpeter@648
   962
kpeter@648
   963
    /// \name Query Functions
kpeter@648
   964
    /// The results of the algorithm can be obtained using these
kpeter@648
   965
    /// functions.\n
kpeter@652
   966
    /// The \ref run() function must be called before using them.
kpeter@652
   967
kpeter@648
   968
    /// @{
kpeter@648
   969
kpeter@652
   970
    /// \brief Return the total cost of the found flow.
kpeter@652
   971
    ///
kpeter@652
   972
    /// This function returns the total cost of the found flow.
kpeter@687
   973
    /// Its complexity is O(e).
kpeter@652
   974
    ///
kpeter@652
   975
    /// \note The return type of the function can be specified as a
kpeter@652
   976
    /// template parameter. For example,
kpeter@652
   977
    /// \code
kpeter@652
   978
    ///   ns.totalCost<double>();
kpeter@652
   979
    /// \endcode
kpeter@654
   980
    /// It is useful if the total cost cannot be stored in the \c Cost
kpeter@652
   981
    /// type of the algorithm, which is the default return type of the
kpeter@652
   982
    /// function.
kpeter@652
   983
    ///
kpeter@652
   984
    /// \pre \ref run() must be called before using this function.
kpeter@689
   985
    template <typename Number>
kpeter@689
   986
    Number totalCost() const {
kpeter@689
   987
      Number c = 0;
kpeter@689
   988
      for (ArcIt a(_graph); a != INVALID; ++a) {
kpeter@689
   989
        int i = _arc_id[a];
kpeter@689
   990
        c += Number(_flow[i]) * Number(_cost[i]);
kpeter@652
   991
      }
kpeter@652
   992
      return c;
kpeter@652
   993
    }
kpeter@652
   994
kpeter@652
   995
#ifndef DOXYGEN
kpeter@654
   996
    Cost totalCost() const {
kpeter@654
   997
      return totalCost<Cost>();
kpeter@652
   998
    }
kpeter@652
   999
#endif
kpeter@652
  1000
kpeter@652
  1001
    /// \brief Return the flow on the given arc.
kpeter@652
  1002
    ///
kpeter@652
  1003
    /// This function returns the flow on the given arc.
kpeter@652
  1004
    ///
kpeter@652
  1005
    /// \pre \ref run() must be called before using this function.
kpeter@688
  1006
    Value flow(const Arc& a) const {
kpeter@689
  1007
      return _flow[_arc_id[a]];
kpeter@652
  1008
    }
kpeter@652
  1009
kpeter@1165
  1010
    /// \brief Copy the flow values (the primal solution) into the
kpeter@1165
  1011
    /// given map.
kpeter@648
  1012
    ///
kpeter@689
  1013
    /// This function copies the flow value on each arc into the given
kpeter@689
  1014
    /// map. The \c Value type of the algorithm must be convertible to
kpeter@689
  1015
    /// the \c Value type of the map.
kpeter@648
  1016
    ///
kpeter@648
  1017
    /// \pre \ref run() must be called before using this function.
kpeter@689
  1018
    template <typename FlowMap>
kpeter@689
  1019
    void flowMap(FlowMap &map) const {
kpeter@689
  1020
      for (ArcIt a(_graph); a != INVALID; ++a) {
kpeter@689
  1021
        map.set(a, _flow[_arc_id[a]]);
kpeter@689
  1022
      }
kpeter@648
  1023
    }
kpeter@648
  1024
kpeter@652
  1025
    /// \brief Return the potential (dual value) of the given node.
kpeter@652
  1026
    ///
kpeter@652
  1027
    /// This function returns the potential (dual value) of the
kpeter@652
  1028
    /// given node.
kpeter@652
  1029
    ///
kpeter@652
  1030
    /// \pre \ref run() must be called before using this function.
kpeter@654
  1031
    Cost potential(const Node& n) const {
kpeter@689
  1032
      return _pi[_node_id[n]];
kpeter@652
  1033
    }
kpeter@652
  1034
kpeter@1165
  1035
    /// \brief Copy the potential values (the dual solution) into the
kpeter@1165
  1036
    /// given map.
kpeter@648
  1037
    ///
kpeter@689
  1038
    /// This function copies the potential (dual value) of each node
kpeter@689
  1039
    /// into the given map.
kpeter@689
  1040
    /// The \c Cost type of the algorithm must be convertible to the
kpeter@689
  1041
    /// \c Value type of the map.
kpeter@648
  1042
    ///
kpeter@648
  1043
    /// \pre \ref run() must be called before using this function.
kpeter@689
  1044
    template <typename PotentialMap>
kpeter@689
  1045
    void potentialMap(PotentialMap &map) const {
kpeter@689
  1046
      for (NodeIt n(_graph); n != INVALID; ++n) {
kpeter@689
  1047
        map.set(n, _pi[_node_id[n]]);
kpeter@689
  1048
      }
kpeter@648
  1049
    }
kpeter@648
  1050
kpeter@648
  1051
    /// @}
kpeter@648
  1052
kpeter@648
  1053
  private:
kpeter@648
  1054
kpeter@648
  1055
    // Initialize internal data structures
kpeter@648
  1056
    bool init() {
kpeter@652
  1057
      if (_node_num == 0) return false;
kpeter@648
  1058
kpeter@689
  1059
      // Check the sum of supply values
kpeter@689
  1060
      _sum_supply = 0;
kpeter@689
  1061
      for (int i = 0; i != _node_num; ++i) {
kpeter@689
  1062
        _sum_supply += _supply[i];
kpeter@689
  1063
      }
alpar@690
  1064
      if ( !((_stype == GEQ && _sum_supply <= 0) ||
alpar@690
  1065
             (_stype == LEQ && _sum_supply >= 0)) ) return false;
kpeter@648
  1066
kpeter@689
  1067
      // Remove non-zero lower bounds
kpeter@689
  1068
      if (_have_lower) {
kpeter@689
  1069
        for (int i = 0; i != _arc_num; ++i) {
kpeter@689
  1070
          Value c = _lower[i];
kpeter@689
  1071
          if (c >= 0) {
kpeter@877
  1072
            _cap[i] = _upper[i] < MAX ? _upper[i] - c : INF;
kpeter@689
  1073
          } else {
kpeter@877
  1074
            _cap[i] = _upper[i] < MAX + c ? _upper[i] - c : INF;
kpeter@689
  1075
          }
kpeter@689
  1076
          _supply[_source[i]] -= c;
kpeter@689
  1077
          _supply[_target[i]] += c;
kpeter@689
  1078
        }
kpeter@689
  1079
      } else {
kpeter@689
  1080
        for (int i = 0; i != _arc_num; ++i) {
kpeter@689
  1081
          _cap[i] = _upper[i];
kpeter@689
  1082
        }
kpeter@652
  1083
      }
kpeter@648
  1084
kpeter@656
  1085
      // Initialize artifical cost
kpeter@687
  1086
      Cost ART_COST;
kpeter@656
  1087
      if (std::numeric_limits<Cost>::is_exact) {
kpeter@710
  1088
        ART_COST = std::numeric_limits<Cost>::max() / 2 + 1;
kpeter@656
  1089
      } else {
kpeter@976
  1090
        ART_COST = 0;
kpeter@656
  1091
        for (int i = 0; i != _arc_num; ++i) {
kpeter@687
  1092
          if (_cost[i] > ART_COST) ART_COST = _cost[i];
kpeter@656
  1093
        }
kpeter@687
  1094
        ART_COST = (ART_COST + 1) * _node_num;
kpeter@656
  1095
      }
kpeter@656
  1096
kpeter@689
  1097
      // Initialize arc maps
kpeter@689
  1098
      for (int i = 0; i != _arc_num; ++i) {
kpeter@689
  1099
        _flow[i] = 0;
kpeter@689
  1100
        _state[i] = STATE_LOWER;
kpeter@689
  1101
      }
alpar@956
  1102
kpeter@648
  1103
      // Set data for the artificial root node
kpeter@648
  1104
      _root = _node_num;
kpeter@648
  1105
      _parent[_root] = -1;
kpeter@648
  1106
      _pred[_root] = -1;
kpeter@648
  1107
      _thread[_root] = 0;
kpeter@651
  1108
      _rev_thread[0] = _root;
kpeter@689
  1109
      _succ_num[_root] = _node_num + 1;
kpeter@651
  1110
      _last_succ[_root] = _root - 1;
kpeter@687
  1111
      _supply[_root] = -_sum_supply;
kpeter@710
  1112
      _pi[_root] = 0;
kpeter@648
  1113
kpeter@648
  1114
      // Add artificial arcs and initialize the spanning tree data structure
kpeter@710
  1115
      if (_sum_supply == 0) {
kpeter@710
  1116
        // EQ supply constraints
kpeter@710
  1117
        _search_arc_num = _arc_num;
kpeter@710
  1118
        _all_arc_num = _arc_num + _node_num;
kpeter@710
  1119
        for (int u = 0, e = _arc_num; u != _node_num; ++u, ++e) {
kpeter@710
  1120
          _parent[u] = _root;
kpeter@710
  1121
          _pred[u] = e;
kpeter@710
  1122
          _thread[u] = u + 1;
kpeter@710
  1123
          _rev_thread[u + 1] = u;
kpeter@710
  1124
          _succ_num[u] = 1;
kpeter@710
  1125
          _last_succ[u] = u;
kpeter@710
  1126
          _cap[e] = INF;
kpeter@710
  1127
          _state[e] = STATE_TREE;
kpeter@710
  1128
          if (_supply[u] >= 0) {
kpeter@990
  1129
            _pred_dir[u] = DIR_UP;
kpeter@710
  1130
            _pi[u] = 0;
kpeter@710
  1131
            _source[e] = u;
kpeter@710
  1132
            _target[e] = _root;
kpeter@710
  1133
            _flow[e] = _supply[u];
kpeter@710
  1134
            _cost[e] = 0;
kpeter@710
  1135
          } else {
kpeter@990
  1136
            _pred_dir[u] = DIR_DOWN;
kpeter@710
  1137
            _pi[u] = ART_COST;
kpeter@710
  1138
            _source[e] = _root;
kpeter@710
  1139
            _target[e] = u;
kpeter@710
  1140
            _flow[e] = -_supply[u];
kpeter@710
  1141
            _cost[e] = ART_COST;
kpeter@710
  1142
          }
kpeter@648
  1143
        }
kpeter@648
  1144
      }
kpeter@710
  1145
      else if (_sum_supply > 0) {
kpeter@710
  1146
        // LEQ supply constraints
kpeter@710
  1147
        _search_arc_num = _arc_num + _node_num;
kpeter@710
  1148
        int f = _arc_num + _node_num;
kpeter@710
  1149
        for (int u = 0, e = _arc_num; u != _node_num; ++u, ++e) {
kpeter@710
  1150
          _parent[u] = _root;
kpeter@710
  1151
          _thread[u] = u + 1;
kpeter@710
  1152
          _rev_thread[u + 1] = u;
kpeter@710
  1153
          _succ_num[u] = 1;
kpeter@710
  1154
          _last_succ[u] = u;
kpeter@710
  1155
          if (_supply[u] >= 0) {
kpeter@990
  1156
            _pred_dir[u] = DIR_UP;
kpeter@710
  1157
            _pi[u] = 0;
kpeter@710
  1158
            _pred[u] = e;
kpeter@710
  1159
            _source[e] = u;
kpeter@710
  1160
            _target[e] = _root;
kpeter@710
  1161
            _cap[e] = INF;
kpeter@710
  1162
            _flow[e] = _supply[u];
kpeter@710
  1163
            _cost[e] = 0;
kpeter@710
  1164
            _state[e] = STATE_TREE;
kpeter@710
  1165
          } else {
kpeter@990
  1166
            _pred_dir[u] = DIR_DOWN;
kpeter@710
  1167
            _pi[u] = ART_COST;
kpeter@710
  1168
            _pred[u] = f;
kpeter@710
  1169
            _source[f] = _root;
kpeter@710
  1170
            _target[f] = u;
kpeter@710
  1171
            _cap[f] = INF;
kpeter@710
  1172
            _flow[f] = -_supply[u];
kpeter@710
  1173
            _cost[f] = ART_COST;
kpeter@710
  1174
            _state[f] = STATE_TREE;
kpeter@710
  1175
            _source[e] = u;
kpeter@710
  1176
            _target[e] = _root;
kpeter@710
  1177
            _cap[e] = INF;
kpeter@710
  1178
            _flow[e] = 0;
kpeter@710
  1179
            _cost[e] = 0;
kpeter@710
  1180
            _state[e] = STATE_LOWER;
kpeter@710
  1181
            ++f;
kpeter@710
  1182
          }
kpeter@710
  1183
        }
kpeter@710
  1184
        _all_arc_num = f;
kpeter@710
  1185
      }
kpeter@710
  1186
      else {
kpeter@710
  1187
        // GEQ supply constraints
kpeter@710
  1188
        _search_arc_num = _arc_num + _node_num;
kpeter@710
  1189
        int f = _arc_num + _node_num;
kpeter@710
  1190
        for (int u = 0, e = _arc_num; u != _node_num; ++u, ++e) {
kpeter@710
  1191
          _parent[u] = _root;
kpeter@710
  1192
          _thread[u] = u + 1;
kpeter@710
  1193
          _rev_thread[u + 1] = u;
kpeter@710
  1194
          _succ_num[u] = 1;
kpeter@710
  1195
          _last_succ[u] = u;
kpeter@710
  1196
          if (_supply[u] <= 0) {
kpeter@990
  1197
            _pred_dir[u] = DIR_DOWN;
kpeter@710
  1198
            _pi[u] = 0;
kpeter@710
  1199
            _pred[u] = e;
kpeter@710
  1200
            _source[e] = _root;
kpeter@710
  1201
            _target[e] = u;
kpeter@710
  1202
            _cap[e] = INF;
kpeter@710
  1203
            _flow[e] = -_supply[u];
kpeter@710
  1204
            _cost[e] = 0;
kpeter@710
  1205
            _state[e] = STATE_TREE;
kpeter@710
  1206
          } else {
kpeter@990
  1207
            _pred_dir[u] = DIR_UP;
kpeter@710
  1208
            _pi[u] = -ART_COST;
kpeter@710
  1209
            _pred[u] = f;
kpeter@710
  1210
            _source[f] = u;
kpeter@710
  1211
            _target[f] = _root;
kpeter@710
  1212
            _cap[f] = INF;
kpeter@710
  1213
            _flow[f] = _supply[u];
kpeter@710
  1214
            _state[f] = STATE_TREE;
kpeter@710
  1215
            _cost[f] = ART_COST;
kpeter@710
  1216
            _source[e] = _root;
kpeter@710
  1217
            _target[e] = u;
kpeter@710
  1218
            _cap[e] = INF;
kpeter@710
  1219
            _flow[e] = 0;
kpeter@710
  1220
            _cost[e] = 0;
kpeter@710
  1221
            _state[e] = STATE_LOWER;
kpeter@710
  1222
            ++f;
kpeter@710
  1223
          }
kpeter@710
  1224
        }
kpeter@710
  1225
        _all_arc_num = f;
kpeter@710
  1226
      }
kpeter@648
  1227
kpeter@648
  1228
      return true;
kpeter@648
  1229
    }
kpeter@648
  1230
kpeter@648
  1231
    // Find the join node
kpeter@648
  1232
    void findJoinNode() {
kpeter@650
  1233
      int u = _source[in_arc];
kpeter@650
  1234
      int v = _target[in_arc];
kpeter@648
  1235
      while (u != v) {
kpeter@651
  1236
        if (_succ_num[u] < _succ_num[v]) {
kpeter@651
  1237
          u = _parent[u];
kpeter@651
  1238
        } else {
kpeter@651
  1239
          v = _parent[v];
kpeter@651
  1240
        }
kpeter@648
  1241
      }
kpeter@648
  1242
      join = u;
kpeter@648
  1243
    }
kpeter@648
  1244
kpeter@648
  1245
    // Find the leaving arc of the cycle and returns true if the
kpeter@648
  1246
    // leaving arc is not the same as the entering arc
kpeter@648
  1247
    bool findLeavingArc() {
kpeter@648
  1248
      // Initialize first and second nodes according to the direction
kpeter@648
  1249
      // of the cycle
kpeter@990
  1250
      int first, second;
kpeter@650
  1251
      if (_state[in_arc] == STATE_LOWER) {
kpeter@650
  1252
        first  = _source[in_arc];
kpeter@650
  1253
        second = _target[in_arc];
kpeter@648
  1254
      } else {
kpeter@650
  1255
        first  = _target[in_arc];
kpeter@650
  1256
        second = _source[in_arc];
kpeter@648
  1257
      }
kpeter@650
  1258
      delta = _cap[in_arc];
kpeter@648
  1259
      int result = 0;
kpeter@990
  1260
      Value c, d;
kpeter@648
  1261
      int e;
kpeter@648
  1262
kpeter@990
  1263
      // Search the cycle form the first node to the join node
kpeter@648
  1264
      for (int u = first; u != join; u = _parent[u]) {
kpeter@648
  1265
        e = _pred[u];
kpeter@990
  1266
        d = _flow[e];
kpeter@990
  1267
        if (_pred_dir[u] == DIR_DOWN) {
kpeter@990
  1268
          c = _cap[e];
kpeter@990
  1269
          d = c >= MAX ? INF : c - d;
kpeter@990
  1270
        }
kpeter@648
  1271
        if (d < delta) {
kpeter@648
  1272
          delta = d;
kpeter@648
  1273
          u_out = u;
kpeter@648
  1274
          result = 1;
kpeter@648
  1275
        }
kpeter@648
  1276
      }
kpeter@990
  1277
kpeter@990
  1278
      // Search the cycle form the second node to the join node
kpeter@648
  1279
      for (int u = second; u != join; u = _parent[u]) {
kpeter@648
  1280
        e = _pred[u];
kpeter@990
  1281
        d = _flow[e];
kpeter@990
  1282
        if (_pred_dir[u] == DIR_UP) {
kpeter@990
  1283
          c = _cap[e];
kpeter@990
  1284
          d = c >= MAX ? INF : c - d;
kpeter@990
  1285
        }
kpeter@648
  1286
        if (d <= delta) {
kpeter@648
  1287
          delta = d;
kpeter@648
  1288
          u_out = u;
kpeter@648
  1289
          result = 2;
kpeter@648
  1290
        }
kpeter@648
  1291
      }
kpeter@648
  1292
kpeter@648
  1293
      if (result == 1) {
kpeter@648
  1294
        u_in = first;
kpeter@648
  1295
        v_in = second;
kpeter@648
  1296
      } else {
kpeter@648
  1297
        u_in = second;
kpeter@648
  1298
        v_in = first;
kpeter@648
  1299
      }
kpeter@648
  1300
      return result != 0;
kpeter@648
  1301
    }
kpeter@648
  1302
kpeter@648
  1303
    // Change _flow and _state vectors
kpeter@648
  1304
    void changeFlow(bool change) {
kpeter@648
  1305
      // Augment along the cycle
kpeter@648
  1306
      if (delta > 0) {
kpeter@688
  1307
        Value val = _state[in_arc] * delta;
kpeter@650
  1308
        _flow[in_arc] += val;
kpeter@650
  1309
        for (int u = _source[in_arc]; u != join; u = _parent[u]) {
kpeter@990
  1310
          _flow[_pred[u]] -= _pred_dir[u] * val;
kpeter@648
  1311
        }
kpeter@650
  1312
        for (int u = _target[in_arc]; u != join; u = _parent[u]) {
kpeter@990
  1313
          _flow[_pred[u]] += _pred_dir[u] * val;
kpeter@648
  1314
        }
kpeter@648
  1315
      }
kpeter@648
  1316
      // Update the state of the entering and leaving arcs
kpeter@648
  1317
      if (change) {
kpeter@650
  1318
        _state[in_arc] = STATE_TREE;
kpeter@648
  1319
        _state[_pred[u_out]] =
kpeter@648
  1320
          (_flow[_pred[u_out]] == 0) ? STATE_LOWER : STATE_UPPER;
kpeter@648
  1321
      } else {
kpeter@650
  1322
        _state[in_arc] = -_state[in_arc];
kpeter@648
  1323
      }
kpeter@648
  1324
    }
kpeter@648
  1325
kpeter@651
  1326
    // Update the tree structure
kpeter@651
  1327
    void updateTreeStructure() {
kpeter@651
  1328
      int old_rev_thread = _rev_thread[u_out];
kpeter@651
  1329
      int old_succ_num = _succ_num[u_out];
kpeter@651
  1330
      int old_last_succ = _last_succ[u_out];
kpeter@648
  1331
      v_out = _parent[u_out];
kpeter@648
  1332
kpeter@990
  1333
      // Check if u_in and u_out coincide
kpeter@990
  1334
      if (u_in == u_out) {
kpeter@990
  1335
        // Update _parent, _pred, _pred_dir
kpeter@990
  1336
        _parent[u_in] = v_in;
kpeter@990
  1337
        _pred[u_in] = in_arc;
kpeter@990
  1338
        _pred_dir[u_in] = u_in == _source[in_arc] ? DIR_UP : DIR_DOWN;
kpeter@651
  1339
kpeter@990
  1340
        // Update _thread and _rev_thread
kpeter@990
  1341
        if (_thread[v_in] != u_out) {
kpeter@990
  1342
          int after = _thread[old_last_succ];
kpeter@990
  1343
          _thread[old_rev_thread] = after;
kpeter@990
  1344
          _rev_thread[after] = old_rev_thread;
kpeter@990
  1345
          after = _thread[v_in];
kpeter@990
  1346
          _thread[v_in] = u_out;
kpeter@990
  1347
          _rev_thread[u_out] = v_in;
kpeter@990
  1348
          _thread[old_last_succ] = after;
kpeter@990
  1349
          _rev_thread[after] = old_last_succ;
kpeter@990
  1350
        }
kpeter@651
  1351
      } else {
kpeter@990
  1352
        // Handle the case when old_rev_thread equals to v_in
kpeter@990
  1353
        // (it also means that join and v_out coincide)
kpeter@990
  1354
        int thread_continue = old_rev_thread == v_in ?
kpeter@990
  1355
          _thread[old_last_succ] : _thread[v_in];
kpeter@648
  1356
kpeter@990
  1357
        // Update _thread and _parent along the stem nodes (i.e. the nodes
kpeter@990
  1358
        // between u_in and u_out, whose parent have to be changed)
kpeter@990
  1359
        int stem = u_in;              // the current stem node
kpeter@990
  1360
        int par_stem = v_in;          // the new parent of stem
kpeter@990
  1361
        int next_stem;                // the next stem node
kpeter@990
  1362
        int last = _last_succ[u_in];  // the last successor of stem
kpeter@990
  1363
        int before, after = _thread[last];
kpeter@990
  1364
        _thread[v_in] = u_in;
kpeter@990
  1365
        _dirty_revs.clear();
kpeter@990
  1366
        _dirty_revs.push_back(v_in);
kpeter@990
  1367
        while (stem != u_out) {
kpeter@990
  1368
          // Insert the next stem node into the thread list
kpeter@990
  1369
          next_stem = _parent[stem];
kpeter@990
  1370
          _thread[last] = next_stem;
kpeter@990
  1371
          _dirty_revs.push_back(last);
kpeter@648
  1372
kpeter@990
  1373
          // Remove the subtree of stem from the thread list
kpeter@990
  1374
          before = _rev_thread[stem];
kpeter@990
  1375
          _thread[before] = after;
kpeter@990
  1376
          _rev_thread[after] = before;
kpeter@648
  1377
kpeter@990
  1378
          // Change the parent node and shift stem nodes
kpeter@990
  1379
          _parent[stem] = par_stem;
kpeter@990
  1380
          par_stem = stem;
kpeter@990
  1381
          stem = next_stem;
kpeter@648
  1382
kpeter@990
  1383
          // Update last and after
kpeter@990
  1384
          last = _last_succ[stem] == _last_succ[par_stem] ?
kpeter@990
  1385
            _rev_thread[par_stem] : _last_succ[stem];
kpeter@990
  1386
          after = _thread[last];
kpeter@990
  1387
        }
kpeter@990
  1388
        _parent[u_out] = par_stem;
kpeter@990
  1389
        _thread[last] = thread_continue;
kpeter@990
  1390
        _rev_thread[thread_continue] = last;
kpeter@990
  1391
        _last_succ[u_out] = last;
kpeter@648
  1392
kpeter@990
  1393
        // Remove the subtree of u_out from the thread list except for
kpeter@990
  1394
        // the case when old_rev_thread equals to v_in
kpeter@990
  1395
        if (old_rev_thread != v_in) {
kpeter@990
  1396
          _thread[old_rev_thread] = after;
kpeter@990
  1397
          _rev_thread[after] = old_rev_thread;
kpeter@990
  1398
        }
kpeter@651
  1399
kpeter@990
  1400
        // Update _rev_thread using the new _thread values
kpeter@990
  1401
        for (int i = 0; i != int(_dirty_revs.size()); ++i) {
kpeter@990
  1402
          int u = _dirty_revs[i];
kpeter@990
  1403
          _rev_thread[_thread[u]] = u;
kpeter@990
  1404
        }
kpeter@651
  1405
kpeter@990
  1406
        // Update _pred, _pred_dir, _last_succ and _succ_num for the
kpeter@990
  1407
        // stem nodes from u_out to u_in
kpeter@990
  1408
        int tmp_sc = 0, tmp_ls = _last_succ[u_out];
kpeter@990
  1409
        for (int u = u_out, p = _parent[u]; u != u_in; u = p, p = _parent[u]) {
kpeter@990
  1410
          _pred[u] = _pred[p];
kpeter@990
  1411
          _pred_dir[u] = -_pred_dir[p];
kpeter@990
  1412
          tmp_sc += _succ_num[u] - _succ_num[p];
kpeter@990
  1413
          _succ_num[u] = tmp_sc;
kpeter@990
  1414
          _last_succ[p] = tmp_ls;
kpeter@990
  1415
        }
kpeter@990
  1416
        _pred[u_in] = in_arc;
kpeter@990
  1417
        _pred_dir[u_in] = u_in == _source[in_arc] ? DIR_UP : DIR_DOWN;
kpeter@990
  1418
        _succ_num[u_in] = old_succ_num;
kpeter@651
  1419
      }
kpeter@651
  1420
kpeter@651
  1421
      // Update _last_succ from v_in towards the root
kpeter@990
  1422
      int up_limit_out = _last_succ[join] == v_in ? join : -1;
kpeter@990
  1423
      int last_succ_out = _last_succ[u_out];
kpeter@990
  1424
      for (int u = v_in; u != -1 && _last_succ[u] == v_in; u = _parent[u]) {
kpeter@990
  1425
        _last_succ[u] = last_succ_out;
kpeter@651
  1426
      }
kpeter@990
  1427
kpeter@651
  1428
      // Update _last_succ from v_out towards the root
kpeter@651
  1429
      if (join != old_rev_thread && v_in != old_rev_thread) {
kpeter@990
  1430
        for (int u = v_out; u != up_limit_out && _last_succ[u] == old_last_succ;
kpeter@651
  1431
             u = _parent[u]) {
kpeter@651
  1432
          _last_succ[u] = old_rev_thread;
kpeter@651
  1433
        }
kpeter@990
  1434
      }
kpeter@990
  1435
      else if (last_succ_out != old_last_succ) {
kpeter@990
  1436
        for (int u = v_out; u != up_limit_out && _last_succ[u] == old_last_succ;
kpeter@651
  1437
             u = _parent[u]) {
kpeter@990
  1438
          _last_succ[u] = last_succ_out;
kpeter@651
  1439
        }
kpeter@651
  1440
      }
kpeter@651
  1441
kpeter@651
  1442
      // Update _succ_num from v_in to join
kpeter@990
  1443
      for (int u = v_in; u != join; u = _parent[u]) {
kpeter@651
  1444
        _succ_num[u] += old_succ_num;
kpeter@651
  1445
      }
kpeter@651
  1446
      // Update _succ_num from v_out to join
kpeter@990
  1447
      for (int u = v_out; u != join; u = _parent[u]) {
kpeter@651
  1448
        _succ_num[u] -= old_succ_num;
kpeter@648
  1449
      }
kpeter@648
  1450
    }
kpeter@648
  1451
kpeter@990
  1452
    // Update potentials in the subtree that has been moved
kpeter@651
  1453
    void updatePotential() {
kpeter@990
  1454
      Cost sigma = _pi[v_in] - _pi[u_in] -
kpeter@990
  1455
                   _pred_dir[u_in] * _cost[in_arc];
kpeter@655
  1456
      int end = _thread[_last_succ[u_in]];
kpeter@655
  1457
      for (int u = u_in; u != end; u = _thread[u]) {
kpeter@655
  1458
        _pi[u] += sigma;
kpeter@648
  1459
      }
kpeter@648
  1460
    }
kpeter@648
  1461
kpeter@910
  1462
    // Heuristic initial pivots
kpeter@910
  1463
    bool initialPivots() {
kpeter@910
  1464
      Value curr, total = 0;
kpeter@910
  1465
      std::vector<Node> supply_nodes, demand_nodes;
kpeter@910
  1466
      for (NodeIt u(_graph); u != INVALID; ++u) {
kpeter@910
  1467
        curr = _supply[_node_id[u]];
kpeter@910
  1468
        if (curr > 0) {
kpeter@910
  1469
          total += curr;
kpeter@910
  1470
          supply_nodes.push_back(u);
kpeter@910
  1471
        }
kpeter@910
  1472
        else if (curr < 0) {
kpeter@910
  1473
          demand_nodes.push_back(u);
kpeter@910
  1474
        }
kpeter@910
  1475
      }
kpeter@910
  1476
      if (_sum_supply > 0) total -= _sum_supply;
kpeter@910
  1477
      if (total <= 0) return true;
kpeter@910
  1478
kpeter@910
  1479
      IntVector arc_vector;
kpeter@910
  1480
      if (_sum_supply >= 0) {
kpeter@910
  1481
        if (supply_nodes.size() == 1 && demand_nodes.size() == 1) {
kpeter@910
  1482
          // Perform a reverse graph search from the sink to the source
kpeter@910
  1483
          typename GR::template NodeMap<bool> reached(_graph, false);
kpeter@910
  1484
          Node s = supply_nodes[0], t = demand_nodes[0];
kpeter@910
  1485
          std::vector<Node> stack;
kpeter@910
  1486
          reached[t] = true;
kpeter@910
  1487
          stack.push_back(t);
kpeter@910
  1488
          while (!stack.empty()) {
kpeter@910
  1489
            Node u, v = stack.back();
kpeter@910
  1490
            stack.pop_back();
kpeter@910
  1491
            if (v == s) break;
kpeter@910
  1492
            for (InArcIt a(_graph, v); a != INVALID; ++a) {
kpeter@910
  1493
              if (reached[u = _graph.source(a)]) continue;
kpeter@910
  1494
              int j = _arc_id[a];
kpeter@910
  1495
              if (_cap[j] >= total) {
kpeter@910
  1496
                arc_vector.push_back(j);
kpeter@910
  1497
                reached[u] = true;
kpeter@910
  1498
                stack.push_back(u);
kpeter@910
  1499
              }
kpeter@910
  1500
            }
kpeter@910
  1501
          }
kpeter@910
  1502
        } else {
kpeter@910
  1503
          // Find the min. cost incomming arc for each demand node
kpeter@910
  1504
          for (int i = 0; i != int(demand_nodes.size()); ++i) {
kpeter@910
  1505
            Node v = demand_nodes[i];
kpeter@910
  1506
            Cost c, min_cost = std::numeric_limits<Cost>::max();
kpeter@910
  1507
            Arc min_arc = INVALID;
kpeter@910
  1508
            for (InArcIt a(_graph, v); a != INVALID; ++a) {
kpeter@910
  1509
              c = _cost[_arc_id[a]];
kpeter@910
  1510
              if (c < min_cost) {
kpeter@910
  1511
                min_cost = c;
kpeter@910
  1512
                min_arc = a;
kpeter@910
  1513
              }
kpeter@910
  1514
            }
kpeter@910
  1515
            if (min_arc != INVALID) {
kpeter@910
  1516
              arc_vector.push_back(_arc_id[min_arc]);
kpeter@910
  1517
            }
kpeter@910
  1518
          }
kpeter@910
  1519
        }
kpeter@910
  1520
      } else {
kpeter@910
  1521
        // Find the min. cost outgoing arc for each supply node
kpeter@910
  1522
        for (int i = 0; i != int(supply_nodes.size()); ++i) {
kpeter@910
  1523
          Node u = supply_nodes[i];
kpeter@910
  1524
          Cost c, min_cost = std::numeric_limits<Cost>::max();
kpeter@910
  1525
          Arc min_arc = INVALID;
kpeter@910
  1526
          for (OutArcIt a(_graph, u); a != INVALID; ++a) {
kpeter@910
  1527
            c = _cost[_arc_id[a]];
kpeter@910
  1528
            if (c < min_cost) {
kpeter@910
  1529
              min_cost = c;
kpeter@910
  1530
              min_arc = a;
kpeter@910
  1531
            }
kpeter@910
  1532
          }
kpeter@910
  1533
          if (min_arc != INVALID) {
kpeter@910
  1534
            arc_vector.push_back(_arc_id[min_arc]);
kpeter@910
  1535
          }
kpeter@910
  1536
        }
kpeter@910
  1537
      }
kpeter@910
  1538
kpeter@910
  1539
      // Perform heuristic initial pivots
kpeter@910
  1540
      for (int i = 0; i != int(arc_vector.size()); ++i) {
kpeter@910
  1541
        in_arc = arc_vector[i];
kpeter@910
  1542
        if (_state[in_arc] * (_cost[in_arc] + _pi[_source[in_arc]] -
kpeter@910
  1543
            _pi[_target[in_arc]]) >= 0) continue;
kpeter@910
  1544
        findJoinNode();
kpeter@910
  1545
        bool change = findLeavingArc();
kpeter@910
  1546
        if (delta >= MAX) return false;
kpeter@910
  1547
        changeFlow(change);
kpeter@910
  1548
        if (change) {
kpeter@910
  1549
          updateTreeStructure();
kpeter@910
  1550
          updatePotential();
kpeter@910
  1551
        }
kpeter@910
  1552
      }
kpeter@910
  1553
      return true;
kpeter@910
  1554
    }
kpeter@910
  1555
kpeter@648
  1556
    // Execute the algorithm
kpeter@687
  1557
    ProblemType start(PivotRule pivot_rule) {
kpeter@648
  1558
      // Select the pivot rule implementation
kpeter@648
  1559
      switch (pivot_rule) {
kpeter@652
  1560
        case FIRST_ELIGIBLE:
kpeter@648
  1561
          return start<FirstEligiblePivotRule>();
kpeter@652
  1562
        case BEST_ELIGIBLE:
kpeter@648
  1563
          return start<BestEligiblePivotRule>();
kpeter@652
  1564
        case BLOCK_SEARCH:
kpeter@648
  1565
          return start<BlockSearchPivotRule>();
kpeter@652
  1566
        case CANDIDATE_LIST:
kpeter@648
  1567
          return start<CandidateListPivotRule>();
kpeter@652
  1568
        case ALTERING_LIST:
kpeter@648
  1569
          return start<AlteringListPivotRule>();
kpeter@648
  1570
      }
kpeter@687
  1571
      return INFEASIBLE; // avoid warning
kpeter@648
  1572
    }
kpeter@648
  1573
kpeter@652
  1574
    template <typename PivotRuleImpl>
kpeter@687
  1575
    ProblemType start() {
kpeter@652
  1576
      PivotRuleImpl pivot(*this);
kpeter@648
  1577
kpeter@910
  1578
      // Perform heuristic initial pivots
kpeter@910
  1579
      if (!initialPivots()) return UNBOUNDED;
kpeter@910
  1580
kpeter@652
  1581
      // Execute the Network Simplex algorithm
kpeter@648
  1582
      while (pivot.findEnteringArc()) {
kpeter@648
  1583
        findJoinNode();
kpeter@648
  1584
        bool change = findLeavingArc();
kpeter@877
  1585
        if (delta >= MAX) return UNBOUNDED;
kpeter@648
  1586
        changeFlow(change);
kpeter@648
  1587
        if (change) {
kpeter@651
  1588
          updateTreeStructure();
kpeter@651
  1589
          updatePotential();
kpeter@648
  1590
        }
kpeter@648
  1591
      }
alpar@956
  1592
kpeter@687
  1593
      // Check feasibility
kpeter@710
  1594
      for (int e = _search_arc_num; e != _all_arc_num; ++e) {
kpeter@710
  1595
        if (_flow[e] != 0) return INFEASIBLE;
kpeter@687
  1596
      }
kpeter@648
  1597
kpeter@689
  1598
      // Transform the solution and the supply map to the original form
kpeter@689
  1599
      if (_have_lower) {
kpeter@648
  1600
        for (int i = 0; i != _arc_num; ++i) {
kpeter@689
  1601
          Value c = _lower[i];
kpeter@689
  1602
          if (c != 0) {
kpeter@689
  1603
            _flow[i] += c;
kpeter@689
  1604
            _supply[_source[i]] += c;
kpeter@689
  1605
            _supply[_target[i]] -= c;
kpeter@689
  1606
          }
kpeter@648
  1607
        }
kpeter@648
  1608
      }
alpar@956
  1609
kpeter@710
  1610
      // Shift potentials to meet the requirements of the GEQ/LEQ type
kpeter@710
  1611
      // optimality conditions
kpeter@710
  1612
      if (_sum_supply == 0) {
kpeter@710
  1613
        if (_stype == GEQ) {
kpeter@976
  1614
          Cost max_pot = -std::numeric_limits<Cost>::max();
kpeter@710
  1615
          for (int i = 0; i != _node_num; ++i) {
kpeter@710
  1616
            if (_pi[i] > max_pot) max_pot = _pi[i];
kpeter@710
  1617
          }
kpeter@710
  1618
          if (max_pot > 0) {
kpeter@710
  1619
            for (int i = 0; i != _node_num; ++i)
kpeter@710
  1620
              _pi[i] -= max_pot;
kpeter@710
  1621
          }
kpeter@710
  1622
        } else {
kpeter@710
  1623
          Cost min_pot = std::numeric_limits<Cost>::max();
kpeter@710
  1624
          for (int i = 0; i != _node_num; ++i) {
kpeter@710
  1625
            if (_pi[i] < min_pot) min_pot = _pi[i];
kpeter@710
  1626
          }
kpeter@710
  1627
          if (min_pot < 0) {
kpeter@710
  1628
            for (int i = 0; i != _node_num; ++i)
kpeter@710
  1629
              _pi[i] -= min_pot;
kpeter@710
  1630
          }
kpeter@710
  1631
        }
kpeter@710
  1632
      }
kpeter@648
  1633
kpeter@687
  1634
      return OPTIMAL;
kpeter@648
  1635
    }
kpeter@648
  1636
kpeter@648
  1637
  }; //class NetworkSimplex
kpeter@648
  1638
kpeter@648
  1639
  ///@}
kpeter@648
  1640
kpeter@648
  1641
} //namespace lemon
kpeter@648
  1642
kpeter@648
  1643
#endif //LEMON_NETWORK_SIMPLEX_H