| 1 | /* -*- mode: C++; indent-tabs-mode: nil; -*- |
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| 2 | * |
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| 3 | * This file is a part of LEMON, a generic C++ optimization library. |
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| 4 | * |
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| 5 | * Copyright (C) 2003-2010 |
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| 6 | * Egervary Jeno Kombinatorikus Optimalizalasi Kutatocsoport |
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| 7 | * (Egervary Research Group on Combinatorial Optimization, EGRES). |
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| 8 | * |
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| 9 | * Permission to use, modify and distribute this software is granted |
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| 10 | * provided that this copyright notice appears in all copies. For |
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| 11 | * precise terms see the accompanying LICENSE file. |
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| 12 | * |
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| 13 | * This software is provided "AS IS" with no warranty of any kind, |
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| 14 | * express or implied, and with no claim as to its suitability for any |
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| 15 | * purpose. |
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| 16 | * |
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| 17 | */ |
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| 18 | |
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| 19 | #ifndef LEMON_CAPACITY_SCALING_H |
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| 20 | #define LEMON_CAPACITY_SCALING_H |
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| 21 | |
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| 22 | /// \ingroup min_cost_flow_algs |
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| 23 | /// |
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| 24 | /// \file |
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| 25 | /// \brief Capacity Scaling algorithm for finding a minimum cost flow. |
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| 26 | |
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| 27 | #include <vector> |
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| 28 | #include <limits> |
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| 29 | #include <lemon/core.h> |
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| 30 | #include <lemon/bin_heap.h> |
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| 31 | |
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| 32 | namespace lemon { |
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| 33 | |
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| 34 | /// \brief Default traits class of CapacityScaling algorithm. |
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| 35 | /// |
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| 36 | /// Default traits class of CapacityScaling algorithm. |
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| 37 | /// \tparam GR Digraph type. |
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| 38 | /// \tparam V The number type used for flow amounts, capacity bounds |
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| 39 | /// and supply values. By default it is \c int. |
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| 40 | /// \tparam C The number type used for costs and potentials. |
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| 41 | /// By default it is the same as \c V. |
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| 42 | template <typename GR, typename V = int, typename C = V> |
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| 43 | struct CapacityScalingDefaultTraits |
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| 44 | { |
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| 45 | /// The type of the digraph |
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| 46 | typedef GR Digraph; |
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| 47 | /// The type of the flow amounts, capacity bounds and supply values |
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| 48 | typedef V Value; |
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| 49 | /// The type of the arc costs |
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| 50 | typedef C Cost; |
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| 51 | |
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| 52 | /// \brief The type of the heap used for internal Dijkstra computations. |
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| 53 | /// |
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| 54 | /// The type of the heap used for internal Dijkstra computations. |
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| 55 | /// It must conform to the \ref lemon::concepts::Heap "Heap" concept, |
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| 56 | /// its priority type must be \c Cost and its cross reference type |
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| 57 | /// must be \ref RangeMap "RangeMap<int>". |
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| 58 | typedef BinHeap<Cost, RangeMap<int> > Heap; |
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| 59 | }; |
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| 60 | |
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| 61 | /// \addtogroup min_cost_flow_algs |
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| 62 | /// @{ |
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| 63 | |
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| 64 | /// \brief Implementation of the Capacity Scaling algorithm for |
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| 65 | /// finding a \ref min_cost_flow "minimum cost flow". |
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| 66 | /// |
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| 67 | /// \ref CapacityScaling implements the capacity scaling version |
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| 68 | /// of the successive shortest path algorithm for finding a |
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| 69 | /// \ref min_cost_flow "minimum cost flow" \ref amo93networkflows, |
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| 70 | /// \ref edmondskarp72theoretical. It is an efficient dual |
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| 71 | /// solution method. |
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| 72 | /// |
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| 73 | /// This algorithm is typically slower than \ref CostScaling and |
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| 74 | /// \ref NetworkSimplex, but in special cases, it can be more |
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| 75 | /// efficient than them. |
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| 76 | /// (For more information, see \ref min_cost_flow_algs "the module page".) |
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| 77 | /// |
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| 78 | /// Most of the parameters of the problem (except for the digraph) |
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| 79 | /// can be given using separate functions, and the algorithm can be |
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| 80 | /// executed using the \ref run() function. If some parameters are not |
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| 81 | /// specified, then default values will be used. |
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| 82 | /// |
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| 83 | /// \tparam GR The digraph type the algorithm runs on. |
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| 84 | /// \tparam V The number type used for flow amounts, capacity bounds |
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| 85 | /// and supply values in the algorithm. By default, it is \c int. |
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| 86 | /// \tparam C The number type used for costs and potentials in the |
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| 87 | /// algorithm. By default, it is the same as \c V. |
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| 88 | /// \tparam TR The traits class that defines various types used by the |
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| 89 | /// algorithm. By default, it is \ref CapacityScalingDefaultTraits |
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| 90 | /// "CapacityScalingDefaultTraits<GR, V, C>". |
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| 91 | /// In most cases, this parameter should not be set directly, |
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| 92 | /// consider to use the named template parameters instead. |
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| 93 | /// |
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| 94 | /// \warning Both \c V and \c C must be signed number types. |
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| 95 | /// \warning Capacity bounds and supply values must be integer, but |
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| 96 | /// arc costs can be arbitrary real numbers. |
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| 97 | /// \warning This algorithm does not support negative costs for |
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| 98 | /// arcs having infinite upper bound. |
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| 99 | #ifdef DOXYGEN |
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| 100 | template <typename GR, typename V, typename C, typename TR> |
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| 101 | #else |
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| 102 | template < typename GR, typename V = int, typename C = V, |
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| 103 | typename TR = CapacityScalingDefaultTraits<GR, V, C> > |
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| 104 | #endif |
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| 105 | class CapacityScaling |
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| 106 | { |
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| 107 | public: |
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| 108 | |
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| 109 | /// The type of the digraph |
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| 110 | typedef typename TR::Digraph Digraph; |
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| 111 | /// The type of the flow amounts, capacity bounds and supply values |
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| 112 | typedef typename TR::Value Value; |
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| 113 | /// The type of the arc costs |
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| 114 | typedef typename TR::Cost Cost; |
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| 115 | |
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| 116 | /// The type of the heap used for internal Dijkstra computations |
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| 117 | typedef typename TR::Heap Heap; |
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| 118 | |
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| 119 | /// The \ref CapacityScalingDefaultTraits "traits class" of the algorithm |
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| 120 | typedef TR Traits; |
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| 121 | |
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| 122 | public: |
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| 123 | |
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| 124 | /// \brief Problem type constants for the \c run() function. |
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| 125 | /// |
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| 126 | /// Enum type containing the problem type constants that can be |
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| 127 | /// returned by the \ref run() function of the algorithm. |
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| 128 | enum ProblemType { |
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| 129 | /// The problem has no feasible solution (flow). |
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| 130 | INFEASIBLE, |
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| 131 | /// The problem has optimal solution (i.e. it is feasible and |
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| 132 | /// bounded), and the algorithm has found optimal flow and node |
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| 133 | /// potentials (primal and dual solutions). |
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| 134 | OPTIMAL, |
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| 135 | /// The digraph contains an arc of negative cost and infinite |
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| 136 | /// upper bound. It means that the objective function is unbounded |
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| 137 | /// on that arc, however, note that it could actually be bounded |
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| 138 | /// over the feasible flows, but this algroithm cannot handle |
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| 139 | /// these cases. |
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| 140 | UNBOUNDED |
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| 141 | }; |
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| 142 | |
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| 143 | private: |
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| 144 | |
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| 145 | TEMPLATE_DIGRAPH_TYPEDEFS(GR); |
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| 146 | |
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| 147 | typedef std::vector<int> IntVector; |
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| 148 | typedef std::vector<Value> ValueVector; |
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| 149 | typedef std::vector<Cost> CostVector; |
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| 150 | typedef std::vector<char> BoolVector; |
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| 151 | // Note: vector<char> is used instead of vector<bool> for efficiency reasons |
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| 152 | |
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| 153 | private: |
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| 154 | |
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| 155 | // Data related to the underlying digraph |
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| 156 | const GR &_graph; |
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| 157 | int _node_num; |
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| 158 | int _arc_num; |
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| 159 | int _res_arc_num; |
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| 160 | int _root; |
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| 161 | |
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| 162 | // Parameters of the problem |
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| 163 | bool _have_lower; |
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| 164 | Value _sum_supply; |
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| 165 | |
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| 166 | // Data structures for storing the digraph |
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| 167 | IntNodeMap _node_id; |
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| 168 | IntArcMap _arc_idf; |
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| 169 | IntArcMap _arc_idb; |
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| 170 | IntVector _first_out; |
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| 171 | BoolVector _forward; |
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| 172 | IntVector _source; |
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| 173 | IntVector _target; |
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| 174 | IntVector _reverse; |
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| 175 | |
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| 176 | // Node and arc data |
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| 177 | ValueVector _lower; |
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| 178 | ValueVector _upper; |
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| 179 | CostVector _cost; |
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| 180 | ValueVector _supply; |
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| 181 | |
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| 182 | ValueVector _res_cap; |
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| 183 | CostVector _pi; |
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| 184 | ValueVector _excess; |
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| 185 | IntVector _excess_nodes; |
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| 186 | IntVector _deficit_nodes; |
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| 187 | |
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| 188 | Value _delta; |
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| 189 | int _factor; |
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| 190 | IntVector _pred; |
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| 191 | |
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| 192 | public: |
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| 193 | |
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| 194 | /// \brief Constant for infinite upper bounds (capacities). |
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| 195 | /// |
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| 196 | /// Constant for infinite upper bounds (capacities). |
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| 197 | /// It is \c std::numeric_limits<Value>::infinity() if available, |
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| 198 | /// \c std::numeric_limits<Value>::max() otherwise. |
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| 199 | const Value INF; |
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| 200 | |
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| 201 | private: |
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| 202 | |
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| 203 | // Special implementation of the Dijkstra algorithm for finding |
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| 204 | // shortest paths in the residual network of the digraph with |
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| 205 | // respect to the reduced arc costs and modifying the node |
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| 206 | // potentials according to the found distance labels. |
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| 207 | class ResidualDijkstra |
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| 208 | { |
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| 209 | private: |
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| 210 | |
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| 211 | int _node_num; |
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| 212 | bool _geq; |
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| 213 | const IntVector &_first_out; |
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| 214 | const IntVector &_target; |
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| 215 | const CostVector &_cost; |
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| 216 | const ValueVector &_res_cap; |
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| 217 | const ValueVector &_excess; |
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| 218 | CostVector &_pi; |
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| 219 | IntVector &_pred; |
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| 220 | |
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| 221 | IntVector _proc_nodes; |
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| 222 | CostVector _dist; |
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| 223 | |
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| 224 | public: |
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| 225 | |
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| 226 | ResidualDijkstra(CapacityScaling& cs) : |
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| 227 | _node_num(cs._node_num), _geq(cs._sum_supply < 0), |
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| 228 | _first_out(cs._first_out), _target(cs._target), _cost(cs._cost), |
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| 229 | _res_cap(cs._res_cap), _excess(cs._excess), _pi(cs._pi), |
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| 230 | _pred(cs._pred), _dist(cs._node_num) |
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| 231 | {} |
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| 232 | |
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| 233 | int run(int s, Value delta = 1) { |
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| 234 | RangeMap<int> heap_cross_ref(_node_num, Heap::PRE_HEAP); |
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| 235 | Heap heap(heap_cross_ref); |
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| 236 | heap.push(s, 0); |
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| 237 | _pred[s] = -1; |
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| 238 | _proc_nodes.clear(); |
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| 239 | |
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| 240 | // Process nodes |
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| 241 | while (!heap.empty() && _excess[heap.top()] > -delta) { |
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| 242 | int u = heap.top(), v; |
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| 243 | Cost d = heap.prio() + _pi[u], dn; |
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| 244 | _dist[u] = heap.prio(); |
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| 245 | _proc_nodes.push_back(u); |
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| 246 | heap.pop(); |
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| 247 | |
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| 248 | // Traverse outgoing residual arcs |
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| 249 | int last_out = _geq ? _first_out[u+1] : _first_out[u+1] - 1; |
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| 250 | for (int a = _first_out[u]; a != last_out; ++a) { |
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| 251 | if (_res_cap[a] < delta) continue; |
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| 252 | v = _target[a]; |
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| 253 | switch (heap.state(v)) { |
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| 254 | case Heap::PRE_HEAP: |
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| 255 | heap.push(v, d + _cost[a] - _pi[v]); |
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| 256 | _pred[v] = a; |
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| 257 | break; |
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| 258 | case Heap::IN_HEAP: |
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| 259 | dn = d + _cost[a] - _pi[v]; |
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| 260 | if (dn < heap[v]) { |
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| 261 | heap.decrease(v, dn); |
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| 262 | _pred[v] = a; |
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| 263 | } |
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| 264 | break; |
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| 265 | case Heap::POST_HEAP: |
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| 266 | break; |
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| 267 | } |
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| 268 | } |
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| 269 | } |
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| 270 | if (heap.empty()) return -1; |
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| 271 | |
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| 272 | // Update potentials of processed nodes |
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| 273 | int t = heap.top(); |
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| 274 | Cost dt = heap.prio(); |
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| 275 | for (int i = 0; i < int(_proc_nodes.size()); ++i) { |
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| 276 | _pi[_proc_nodes[i]] += _dist[_proc_nodes[i]] - dt; |
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| 277 | } |
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| 278 | |
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| 279 | return t; |
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| 280 | } |
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| 281 | |
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| 282 | }; //class ResidualDijkstra |
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| 283 | |
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| 284 | public: |
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| 285 | |
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| 286 | /// \name Named Template Parameters |
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| 287 | /// @{ |
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| 288 | |
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| 289 | template <typename T> |
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| 290 | struct SetHeapTraits : public Traits { |
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| 291 | typedef T Heap; |
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| 292 | }; |
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| 293 | |
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| 294 | /// \brief \ref named-templ-param "Named parameter" for setting |
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| 295 | /// \c Heap type. |
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| 296 | /// |
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| 297 | /// \ref named-templ-param "Named parameter" for setting \c Heap |
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| 298 | /// type, which is used for internal Dijkstra computations. |
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| 299 | /// It must conform to the \ref lemon::concepts::Heap "Heap" concept, |
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| 300 | /// its priority type must be \c Cost and its cross reference type |
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| 301 | /// must be \ref RangeMap "RangeMap<int>". |
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| 302 | template <typename T> |
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| 303 | struct SetHeap |
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| 304 | : public CapacityScaling<GR, V, C, SetHeapTraits<T> > { |
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| 305 | typedef CapacityScaling<GR, V, C, SetHeapTraits<T> > Create; |
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| 306 | }; |
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| 307 | |
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| 308 | /// @} |
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| 309 | |
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| 310 | protected: |
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| 311 | |
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| 312 | CapacityScaling() {} |
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| 313 | |
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| 314 | public: |
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| 315 | |
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| 316 | /// \brief Constructor. |
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| 317 | /// |
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| 318 | /// The constructor of the class. |
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| 319 | /// |
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| 320 | /// \param graph The digraph the algorithm runs on. |
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| 321 | CapacityScaling(const GR& graph) : |
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| 322 | _graph(graph), _node_id(graph), _arc_idf(graph), _arc_idb(graph), |
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| 323 | INF(std::numeric_limits<Value>::has_infinity ? |
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| 324 | std::numeric_limits<Value>::infinity() : |
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| 325 | std::numeric_limits<Value>::max()) |
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| 326 | { |
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| 327 | // Check the number types |
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| 328 | LEMON_ASSERT(std::numeric_limits<Value>::is_signed, |
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| 329 | "The flow type of CapacityScaling must be signed"); |
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| 330 | LEMON_ASSERT(std::numeric_limits<Cost>::is_signed, |
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| 331 | "The cost type of CapacityScaling must be signed"); |
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| 332 | |
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| 333 | // Reset data structures |
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| 334 | reset(); |
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| 335 | } |
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| 336 | |
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| 337 | /// \name Parameters |
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| 338 | /// The parameters of the algorithm can be specified using these |
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| 339 | /// functions. |
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| 340 | |
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| 341 | /// @{ |
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| 342 | |
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| 343 | /// \brief Set the lower bounds on the arcs. |
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| 344 | /// |
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| 345 | /// This function sets the lower bounds on the arcs. |
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| 346 | /// If it is not used before calling \ref run(), the lower bounds |
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| 347 | /// will be set to zero on all arcs. |
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| 348 | /// |
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| 349 | /// \param map An arc map storing the lower bounds. |
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| 350 | /// Its \c Value type must be convertible to the \c Value type |
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| 351 | /// of the algorithm. |
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| 352 | /// |
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| 353 | /// \return <tt>(*this)</tt> |
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| 354 | template <typename LowerMap> |
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| 355 | CapacityScaling& lowerMap(const LowerMap& map) { |
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| 356 | _have_lower = true; |
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| 357 | for (ArcIt a(_graph); a != INVALID; ++a) { |
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| 358 | _lower[_arc_idf[a]] = map[a]; |
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| 359 | } |
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| 360 | return *this; |
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| 361 | } |
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| 362 | |
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| 363 | /// \brief Set the upper bounds (capacities) on the arcs. |
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| 364 | /// |
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| 365 | /// This function sets the upper bounds (capacities) on the arcs. |
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| 366 | /// If it is not used before calling \ref run(), the upper bounds |
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| 367 | /// will be set to \ref INF on all arcs (i.e. the flow value will be |
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| 368 | /// unbounded from above). |
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| 369 | /// |
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| 370 | /// \param map An arc map storing the upper bounds. |
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| 371 | /// Its \c Value type must be convertible to the \c Value type |
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| 372 | /// of the algorithm. |
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| 373 | /// |
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| 374 | /// \return <tt>(*this)</tt> |
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| 375 | template<typename UpperMap> |
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| 376 | CapacityScaling& upperMap(const UpperMap& map) { |
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| 377 | for (ArcIt a(_graph); a != INVALID; ++a) { |
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| 378 | _upper[_arc_idf[a]] = map[a]; |
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| 379 | } |
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| 380 | return *this; |
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| 381 | } |
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| 382 | |
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| 383 | /// \brief Set the costs of the arcs. |
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| 384 | /// |
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| 385 | /// This function sets the costs of the arcs. |
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| 386 | /// If it is not used before calling \ref run(), the costs |
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| 387 | /// will be set to \c 1 on all arcs. |
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| 388 | /// |
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| 389 | /// \param map An arc map storing the costs. |
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| 390 | /// Its \c Value type must be convertible to the \c Cost type |
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| 391 | /// of the algorithm. |
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| 392 | /// |
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| 393 | /// \return <tt>(*this)</tt> |
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| 394 | template<typename CostMap> |
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| 395 | CapacityScaling& costMap(const CostMap& map) { |
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| 396 | for (ArcIt a(_graph); a != INVALID; ++a) { |
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| 397 | _cost[_arc_idf[a]] = map[a]; |
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| 398 | _cost[_arc_idb[a]] = -map[a]; |
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| 399 | } |
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| 400 | return *this; |
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| 401 | } |
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| 402 | |
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| 403 | /// \brief Set the supply values of the nodes. |
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| 404 | /// |
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| 405 | /// This function sets the supply values of the nodes. |
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| 406 | /// If neither this function nor \ref stSupply() is used before |
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| 407 | /// calling \ref run(), the supply of each node will be set to zero. |
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| 408 | /// |
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| 409 | /// \param map A node map storing the supply values. |
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| 410 | /// Its \c Value type must be convertible to the \c Value type |
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| 411 | /// of the algorithm. |
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| 412 | /// |
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| 413 | /// \return <tt>(*this)</tt> |
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| 414 | template<typename SupplyMap> |
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| 415 | CapacityScaling& supplyMap(const SupplyMap& map) { |
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| 416 | for (NodeIt n(_graph); n != INVALID; ++n) { |
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| 417 | _supply[_node_id[n]] = map[n]; |
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| 418 | } |
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| 419 | return *this; |
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| 420 | } |
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| 421 | |
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| 422 | /// \brief Set single source and target nodes and a supply value. |
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| 423 | /// |
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| 424 | /// This function sets a single source node and a single target node |
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| 425 | /// and the required flow value. |
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| 426 | /// If neither this function nor \ref supplyMap() is used before |
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| 427 | /// calling \ref run(), the supply of each node will be set to zero. |
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| 428 | /// |
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| 429 | /// Using this function has the same effect as using \ref supplyMap() |
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| 430 | /// with a map in which \c k is assigned to \c s, \c -k is |
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| 431 | /// assigned to \c t and all other nodes have zero supply value. |
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| 432 | /// |
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| 433 | /// \param s The source node. |
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| 434 | /// \param t The target node. |
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| 435 | /// \param k The required amount of flow from node \c s to node \c t |
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| 436 | /// (i.e. the supply of \c s and the demand of \c t). |
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| 437 | /// |
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| 438 | /// \return <tt>(*this)</tt> |
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| 439 | CapacityScaling& stSupply(const Node& s, const Node& t, Value k) { |
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| 440 | for (int i = 0; i != _node_num; ++i) { |
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| 441 | _supply[i] = 0; |
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| 442 | } |
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| 443 | _supply[_node_id[s]] = k; |
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| 444 | _supply[_node_id[t]] = -k; |
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| 445 | return *this; |
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| 446 | } |
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| 447 | |
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| 448 | /// @} |
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| 449 | |
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| 450 | /// \name Execution control |
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| 451 | /// The algorithm can be executed using \ref run(). |
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| 452 | |
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| 453 | /// @{ |
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| 454 | |
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| 455 | /// \brief Run the algorithm. |
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| 456 | /// |
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| 457 | /// This function runs the algorithm. |
|---|
| 458 | /// The paramters can be specified using functions \ref lowerMap(), |
|---|
| 459 | /// \ref upperMap(), \ref costMap(), \ref supplyMap(), \ref stSupply(). |
|---|
| 460 | /// For example, |
|---|
| 461 | /// \code |
|---|
| 462 | /// CapacityScaling<ListDigraph> cs(graph); |
|---|
| 463 | /// cs.lowerMap(lower).upperMap(upper).costMap(cost) |
|---|
| 464 | /// .supplyMap(sup).run(); |
|---|
| 465 | /// \endcode |
|---|
| 466 | /// |
|---|
| 467 | /// This function can be called more than once. All the given parameters |
|---|
| 468 | /// are kept for the next call, unless \ref resetParams() or \ref reset() |
|---|
| 469 | /// is used, thus only the modified parameters have to be set again. |
|---|
| 470 | /// If the underlying digraph was also modified after the construction |
|---|
| 471 | /// of the class (or the last \ref reset() call), then the \ref reset() |
|---|
| 472 | /// function must be called. |
|---|
| 473 | /// |
|---|
| 474 | /// \param factor The capacity scaling factor. It must be larger than |
|---|
| 475 | /// one to use scaling. If it is less or equal to one, then scaling |
|---|
| 476 | /// will be disabled. |
|---|
| 477 | /// |
|---|
| 478 | /// \return \c INFEASIBLE if no feasible flow exists, |
|---|
| 479 | /// \n \c OPTIMAL if the problem has optimal solution |
|---|
| 480 | /// (i.e. it is feasible and bounded), and the algorithm has found |
|---|
| 481 | /// optimal flow and node potentials (primal and dual solutions), |
|---|
| 482 | /// \n \c UNBOUNDED if the digraph contains an arc of negative cost |
|---|
| 483 | /// and infinite upper bound. It means that the objective function |
|---|
| 484 | /// is unbounded on that arc, however, note that it could actually be |
|---|
| 485 | /// bounded over the feasible flows, but this algroithm cannot handle |
|---|
| 486 | /// these cases. |
|---|
| 487 | /// |
|---|
| 488 | /// \see ProblemType |
|---|
| 489 | /// \see resetParams(), reset() |
|---|
| 490 | ProblemType run(int factor = 4) { |
|---|
| 491 | _factor = factor; |
|---|
| 492 | ProblemType pt = init(); |
|---|
| 493 | if (pt != OPTIMAL) return pt; |
|---|
| 494 | return start(); |
|---|
| 495 | } |
|---|
| 496 | |
|---|
| 497 | /// \brief Reset all the parameters that have been given before. |
|---|
| 498 | /// |
|---|
| 499 | /// This function resets all the paramaters that have been given |
|---|
| 500 | /// before using functions \ref lowerMap(), \ref upperMap(), |
|---|
| 501 | /// \ref costMap(), \ref supplyMap(), \ref stSupply(). |
|---|
| 502 | /// |
|---|
| 503 | /// It is useful for multiple \ref run() calls. Basically, all the given |
|---|
| 504 | /// parameters are kept for the next \ref run() call, unless |
|---|
| 505 | /// \ref resetParams() or \ref reset() is used. |
|---|
| 506 | /// If the underlying digraph was also modified after the construction |
|---|
| 507 | /// of the class or the last \ref reset() call, then the \ref reset() |
|---|
| 508 | /// function must be used, otherwise \ref resetParams() is sufficient. |
|---|
| 509 | /// |
|---|
| 510 | /// For example, |
|---|
| 511 | /// \code |
|---|
| 512 | /// CapacityScaling<ListDigraph> cs(graph); |
|---|
| 513 | /// |
|---|
| 514 | /// // First run |
|---|
| 515 | /// cs.lowerMap(lower).upperMap(upper).costMap(cost) |
|---|
| 516 | /// .supplyMap(sup).run(); |
|---|
| 517 | /// |
|---|
| 518 | /// // Run again with modified cost map (resetParams() is not called, |
|---|
| 519 | /// // so only the cost map have to be set again) |
|---|
| 520 | /// cost[e] += 100; |
|---|
| 521 | /// cs.costMap(cost).run(); |
|---|
| 522 | /// |
|---|
| 523 | /// // Run again from scratch using resetParams() |
|---|
| 524 | /// // (the lower bounds will be set to zero on all arcs) |
|---|
| 525 | /// cs.resetParams(); |
|---|
| 526 | /// cs.upperMap(capacity).costMap(cost) |
|---|
| 527 | /// .supplyMap(sup).run(); |
|---|
| 528 | /// \endcode |
|---|
| 529 | /// |
|---|
| 530 | /// \return <tt>(*this)</tt> |
|---|
| 531 | /// |
|---|
| 532 | /// \see reset(), run() |
|---|
| 533 | CapacityScaling& resetParams() { |
|---|
| 534 | for (int i = 0; i != _node_num; ++i) { |
|---|
| 535 | _supply[i] = 0; |
|---|
| 536 | } |
|---|
| 537 | for (int j = 0; j != _res_arc_num; ++j) { |
|---|
| 538 | _lower[j] = 0; |
|---|
| 539 | _upper[j] = INF; |
|---|
| 540 | _cost[j] = _forward[j] ? 1 : -1; |
|---|
| 541 | } |
|---|
| 542 | _have_lower = false; |
|---|
| 543 | return *this; |
|---|
| 544 | } |
|---|
| 545 | |
|---|
| 546 | /// \brief Reset the internal data structures and all the parameters |
|---|
| 547 | /// that have been given before. |
|---|
| 548 | /// |
|---|
| 549 | /// This function resets the internal data structures and all the |
|---|
| 550 | /// paramaters that have been given before using functions \ref lowerMap(), |
|---|
| 551 | /// \ref upperMap(), \ref costMap(), \ref supplyMap(), \ref stSupply(). |
|---|
| 552 | /// |
|---|
| 553 | /// It is useful for multiple \ref run() calls. Basically, all the given |
|---|
| 554 | /// parameters are kept for the next \ref run() call, unless |
|---|
| 555 | /// \ref resetParams() or \ref reset() is used. |
|---|
| 556 | /// If the underlying digraph was also modified after the construction |
|---|
| 557 | /// of the class or the last \ref reset() call, then the \ref reset() |
|---|
| 558 | /// function must be used, otherwise \ref resetParams() is sufficient. |
|---|
| 559 | /// |
|---|
| 560 | /// See \ref resetParams() for examples. |
|---|
| 561 | /// |
|---|
| 562 | /// \return <tt>(*this)</tt> |
|---|
| 563 | /// |
|---|
| 564 | /// \see resetParams(), run() |
|---|
| 565 | CapacityScaling& reset() { |
|---|
| 566 | // Resize vectors |
|---|
| 567 | _node_num = countNodes(_graph); |
|---|
| 568 | _arc_num = countArcs(_graph); |
|---|
| 569 | _res_arc_num = 2 * (_arc_num + _node_num); |
|---|
| 570 | _root = _node_num; |
|---|
| 571 | ++_node_num; |
|---|
| 572 | |
|---|
| 573 | _first_out.resize(_node_num + 1); |
|---|
| 574 | _forward.resize(_res_arc_num); |
|---|
| 575 | _source.resize(_res_arc_num); |
|---|
| 576 | _target.resize(_res_arc_num); |
|---|
| 577 | _reverse.resize(_res_arc_num); |
|---|
| 578 | |
|---|
| 579 | _lower.resize(_res_arc_num); |
|---|
| 580 | _upper.resize(_res_arc_num); |
|---|
| 581 | _cost.resize(_res_arc_num); |
|---|
| 582 | _supply.resize(_node_num); |
|---|
| 583 | |
|---|
| 584 | _res_cap.resize(_res_arc_num); |
|---|
| 585 | _pi.resize(_node_num); |
|---|
| 586 | _excess.resize(_node_num); |
|---|
| 587 | _pred.resize(_node_num); |
|---|
| 588 | |
|---|
| 589 | // Copy the graph |
|---|
| 590 | int i = 0, j = 0, k = 2 * _arc_num + _node_num - 1; |
|---|
| 591 | for (NodeIt n(_graph); n != INVALID; ++n, ++i) { |
|---|
| 592 | _node_id[n] = i; |
|---|
| 593 | } |
|---|
| 594 | i = 0; |
|---|
| 595 | for (NodeIt n(_graph); n != INVALID; ++n, ++i) { |
|---|
| 596 | _first_out[i] = j; |
|---|
| 597 | for (OutArcIt a(_graph, n); a != INVALID; ++a, ++j) { |
|---|
| 598 | _arc_idf[a] = j; |
|---|
| 599 | _forward[j] = true; |
|---|
| 600 | _source[j] = i; |
|---|
| 601 | _target[j] = _node_id[_graph.runningNode(a)]; |
|---|
| 602 | } |
|---|
| 603 | for (InArcIt a(_graph, n); a != INVALID; ++a, ++j) { |
|---|
| 604 | _arc_idb[a] = j; |
|---|
| 605 | _forward[j] = false; |
|---|
| 606 | _source[j] = i; |
|---|
| 607 | _target[j] = _node_id[_graph.runningNode(a)]; |
|---|
| 608 | } |
|---|
| 609 | _forward[j] = false; |
|---|
| 610 | _source[j] = i; |
|---|
| 611 | _target[j] = _root; |
|---|
| 612 | _reverse[j] = k; |
|---|
| 613 | _forward[k] = true; |
|---|
| 614 | _source[k] = _root; |
|---|
| 615 | _target[k] = i; |
|---|
| 616 | _reverse[k] = j; |
|---|
| 617 | ++j; ++k; |
|---|
| 618 | } |
|---|
| 619 | _first_out[i] = j; |
|---|
| 620 | _first_out[_node_num] = k; |
|---|
| 621 | for (ArcIt a(_graph); a != INVALID; ++a) { |
|---|
| 622 | int fi = _arc_idf[a]; |
|---|
| 623 | int bi = _arc_idb[a]; |
|---|
| 624 | _reverse[fi] = bi; |
|---|
| 625 | _reverse[bi] = fi; |
|---|
| 626 | } |
|---|
| 627 | |
|---|
| 628 | // Reset parameters |
|---|
| 629 | resetParams(); |
|---|
| 630 | return *this; |
|---|
| 631 | } |
|---|
| 632 | |
|---|
| 633 | /// @} |
|---|
| 634 | |
|---|
| 635 | /// \name Query Functions |
|---|
| 636 | /// The results of the algorithm can be obtained using these |
|---|
| 637 | /// functions.\n |
|---|
| 638 | /// The \ref run() function must be called before using them. |
|---|
| 639 | |
|---|
| 640 | /// @{ |
|---|
| 641 | |
|---|
| 642 | /// \brief Return the total cost of the found flow. |
|---|
| 643 | /// |
|---|
| 644 | /// This function returns the total cost of the found flow. |
|---|
| 645 | /// Its complexity is O(e). |
|---|
| 646 | /// |
|---|
| 647 | /// \note The return type of the function can be specified as a |
|---|
| 648 | /// template parameter. For example, |
|---|
| 649 | /// \code |
|---|
| 650 | /// cs.totalCost<double>(); |
|---|
| 651 | /// \endcode |
|---|
| 652 | /// It is useful if the total cost cannot be stored in the \c Cost |
|---|
| 653 | /// type of the algorithm, which is the default return type of the |
|---|
| 654 | /// function. |
|---|
| 655 | /// |
|---|
| 656 | /// \pre \ref run() must be called before using this function. |
|---|
| 657 | template <typename Number> |
|---|
| 658 | Number totalCost() const { |
|---|
| 659 | Number c = 0; |
|---|
| 660 | for (ArcIt a(_graph); a != INVALID; ++a) { |
|---|
| 661 | int i = _arc_idb[a]; |
|---|
| 662 | c += static_cast<Number>(_res_cap[i]) * |
|---|
| 663 | (-static_cast<Number>(_cost[i])); |
|---|
| 664 | } |
|---|
| 665 | return c; |
|---|
| 666 | } |
|---|
| 667 | |
|---|
| 668 | #ifndef DOXYGEN |
|---|
| 669 | Cost totalCost() const { |
|---|
| 670 | return totalCost<Cost>(); |
|---|
| 671 | } |
|---|
| 672 | #endif |
|---|
| 673 | |
|---|
| 674 | /// \brief Return the flow on the given arc. |
|---|
| 675 | /// |
|---|
| 676 | /// This function returns the flow on the given arc. |
|---|
| 677 | /// |
|---|
| 678 | /// \pre \ref run() must be called before using this function. |
|---|
| 679 | Value flow(const Arc& a) const { |
|---|
| 680 | return _res_cap[_arc_idb[a]]; |
|---|
| 681 | } |
|---|
| 682 | |
|---|
| 683 | /// \brief Copy the flow values (the primal solution) into the |
|---|
| 684 | /// given map. |
|---|
| 685 | /// |
|---|
| 686 | /// This function copies the flow value on each arc into the given |
|---|
| 687 | /// map. The \c Value type of the algorithm must be convertible to |
|---|
| 688 | /// the \c Value type of the map. |
|---|
| 689 | /// |
|---|
| 690 | /// \pre \ref run() must be called before using this function. |
|---|
| 691 | template <typename FlowMap> |
|---|
| 692 | void flowMap(FlowMap &map) const { |
|---|
| 693 | for (ArcIt a(_graph); a != INVALID; ++a) { |
|---|
| 694 | map.set(a, _res_cap[_arc_idb[a]]); |
|---|
| 695 | } |
|---|
| 696 | } |
|---|
| 697 | |
|---|
| 698 | /// \brief Return the potential (dual value) of the given node. |
|---|
| 699 | /// |
|---|
| 700 | /// This function returns the potential (dual value) of the |
|---|
| 701 | /// given node. |
|---|
| 702 | /// |
|---|
| 703 | /// \pre \ref run() must be called before using this function. |
|---|
| 704 | Cost potential(const Node& n) const { |
|---|
| 705 | return _pi[_node_id[n]]; |
|---|
| 706 | } |
|---|
| 707 | |
|---|
| 708 | /// \brief Copy the potential values (the dual solution) into the |
|---|
| 709 | /// given map. |
|---|
| 710 | /// |
|---|
| 711 | /// This function copies the potential (dual value) of each node |
|---|
| 712 | /// into the given map. |
|---|
| 713 | /// The \c Cost type of the algorithm must be convertible to the |
|---|
| 714 | /// \c Value type of the map. |
|---|
| 715 | /// |
|---|
| 716 | /// \pre \ref run() must be called before using this function. |
|---|
| 717 | template <typename PotentialMap> |
|---|
| 718 | void potentialMap(PotentialMap &map) const { |
|---|
| 719 | for (NodeIt n(_graph); n != INVALID; ++n) { |
|---|
| 720 | map.set(n, _pi[_node_id[n]]); |
|---|
| 721 | } |
|---|
| 722 | } |
|---|
| 723 | |
|---|
| 724 | /// @} |
|---|
| 725 | |
|---|
| 726 | private: |
|---|
| 727 | |
|---|
| 728 | // Initialize the algorithm |
|---|
| 729 | ProblemType init() { |
|---|
| 730 | if (_node_num <= 1) return INFEASIBLE; |
|---|
| 731 | |
|---|
| 732 | // Check the sum of supply values |
|---|
| 733 | _sum_supply = 0; |
|---|
| 734 | for (int i = 0; i != _root; ++i) { |
|---|
| 735 | _sum_supply += _supply[i]; |
|---|
| 736 | } |
|---|
| 737 | if (_sum_supply > 0) return INFEASIBLE; |
|---|
| 738 | |
|---|
| 739 | // Check lower and upper bounds |
|---|
| 740 | LEMON_DEBUG(checkBoundMaps(), |
|---|
| 741 | "Upper bounds must be greater or equal to the lower bounds"); |
|---|
| 742 | |
|---|
| 743 | |
|---|
| 744 | // Initialize vectors |
|---|
| 745 | for (int i = 0; i != _root; ++i) { |
|---|
| 746 | _pi[i] = 0; |
|---|
| 747 | _excess[i] = _supply[i]; |
|---|
| 748 | } |
|---|
| 749 | |
|---|
| 750 | // Remove non-zero lower bounds |
|---|
| 751 | const Value MAX = std::numeric_limits<Value>::max(); |
|---|
| 752 | int last_out; |
|---|
| 753 | if (_have_lower) { |
|---|
| 754 | for (int i = 0; i != _root; ++i) { |
|---|
| 755 | last_out = _first_out[i+1]; |
|---|
| 756 | for (int j = _first_out[i]; j != last_out; ++j) { |
|---|
| 757 | if (_forward[j]) { |
|---|
| 758 | Value c = _lower[j]; |
|---|
| 759 | if (c >= 0) { |
|---|
| 760 | _res_cap[j] = _upper[j] < MAX ? _upper[j] - c : INF; |
|---|
| 761 | } else { |
|---|
| 762 | _res_cap[j] = _upper[j] < MAX + c ? _upper[j] - c : INF; |
|---|
| 763 | } |
|---|
| 764 | _excess[i] -= c; |
|---|
| 765 | _excess[_target[j]] += c; |
|---|
| 766 | } else { |
|---|
| 767 | _res_cap[j] = 0; |
|---|
| 768 | } |
|---|
| 769 | } |
|---|
| 770 | } |
|---|
| 771 | } else { |
|---|
| 772 | for (int j = 0; j != _res_arc_num; ++j) { |
|---|
| 773 | _res_cap[j] = _forward[j] ? _upper[j] : 0; |
|---|
| 774 | } |
|---|
| 775 | } |
|---|
| 776 | |
|---|
| 777 | // Handle negative costs |
|---|
| 778 | for (int i = 0; i != _root; ++i) { |
|---|
| 779 | last_out = _first_out[i+1] - 1; |
|---|
| 780 | for (int j = _first_out[i]; j != last_out; ++j) { |
|---|
| 781 | Value rc = _res_cap[j]; |
|---|
| 782 | if (_cost[j] < 0 && rc > 0) { |
|---|
| 783 | if (rc >= MAX) return UNBOUNDED; |
|---|
| 784 | _excess[i] -= rc; |
|---|
| 785 | _excess[_target[j]] += rc; |
|---|
| 786 | _res_cap[j] = 0; |
|---|
| 787 | _res_cap[_reverse[j]] += rc; |
|---|
| 788 | } |
|---|
| 789 | } |
|---|
| 790 | } |
|---|
| 791 | |
|---|
| 792 | // Handle GEQ supply type |
|---|
| 793 | if (_sum_supply < 0) { |
|---|
| 794 | _pi[_root] = 0; |
|---|
| 795 | _excess[_root] = -_sum_supply; |
|---|
| 796 | for (int a = _first_out[_root]; a != _res_arc_num; ++a) { |
|---|
| 797 | int ra = _reverse[a]; |
|---|
| 798 | _res_cap[a] = -_sum_supply + 1; |
|---|
| 799 | _res_cap[ra] = 0; |
|---|
| 800 | _cost[a] = 0; |
|---|
| 801 | _cost[ra] = 0; |
|---|
| 802 | } |
|---|
| 803 | } else { |
|---|
| 804 | _pi[_root] = 0; |
|---|
| 805 | _excess[_root] = 0; |
|---|
| 806 | for (int a = _first_out[_root]; a != _res_arc_num; ++a) { |
|---|
| 807 | int ra = _reverse[a]; |
|---|
| 808 | _res_cap[a] = 1; |
|---|
| 809 | _res_cap[ra] = 0; |
|---|
| 810 | _cost[a] = 0; |
|---|
| 811 | _cost[ra] = 0; |
|---|
| 812 | } |
|---|
| 813 | } |
|---|
| 814 | |
|---|
| 815 | // Initialize delta value |
|---|
| 816 | if (_factor > 1) { |
|---|
| 817 | // With scaling |
|---|
| 818 | Value max_sup = 0, max_dem = 0, max_cap = 0; |
|---|
| 819 | for (int i = 0; i != _root; ++i) { |
|---|
| 820 | Value ex = _excess[i]; |
|---|
| 821 | if ( ex > max_sup) max_sup = ex; |
|---|
| 822 | if (-ex > max_dem) max_dem = -ex; |
|---|
| 823 | int last_out = _first_out[i+1] - 1; |
|---|
| 824 | for (int j = _first_out[i]; j != last_out; ++j) { |
|---|
| 825 | if (_res_cap[j] > max_cap) max_cap = _res_cap[j]; |
|---|
| 826 | } |
|---|
| 827 | } |
|---|
| 828 | max_sup = std::min(std::min(max_sup, max_dem), max_cap); |
|---|
| 829 | for (_delta = 1; 2 * _delta <= max_sup; _delta *= 2) ; |
|---|
| 830 | } else { |
|---|
| 831 | // Without scaling |
|---|
| 832 | _delta = 1; |
|---|
| 833 | } |
|---|
| 834 | |
|---|
| 835 | return OPTIMAL; |
|---|
| 836 | } |
|---|
| 837 | |
|---|
| 838 | // Check if the upper bound is greater than or equal to the lower bound |
|---|
| 839 | // on each forward arc. |
|---|
| 840 | bool checkBoundMaps() { |
|---|
| 841 | for (int j = 0; j != _res_arc_num; ++j) { |
|---|
| 842 | if (_forward[j] && _upper[j] < _lower[j]) return false; |
|---|
| 843 | } |
|---|
| 844 | return true; |
|---|
| 845 | } |
|---|
| 846 | |
|---|
| 847 | ProblemType start() { |
|---|
| 848 | // Execute the algorithm |
|---|
| 849 | ProblemType pt; |
|---|
| 850 | if (_delta > 1) |
|---|
| 851 | pt = startWithScaling(); |
|---|
| 852 | else |
|---|
| 853 | pt = startWithoutScaling(); |
|---|
| 854 | |
|---|
| 855 | // Handle non-zero lower bounds |
|---|
| 856 | if (_have_lower) { |
|---|
| 857 | int limit = _first_out[_root]; |
|---|
| 858 | for (int j = 0; j != limit; ++j) { |
|---|
| 859 | if (_forward[j]) _res_cap[_reverse[j]] += _lower[j]; |
|---|
| 860 | } |
|---|
| 861 | } |
|---|
| 862 | |
|---|
| 863 | // Shift potentials if necessary |
|---|
| 864 | Cost pr = _pi[_root]; |
|---|
| 865 | if (_sum_supply < 0 || pr > 0) { |
|---|
| 866 | for (int i = 0; i != _node_num; ++i) { |
|---|
| 867 | _pi[i] -= pr; |
|---|
| 868 | } |
|---|
| 869 | } |
|---|
| 870 | |
|---|
| 871 | return pt; |
|---|
| 872 | } |
|---|
| 873 | |
|---|
| 874 | // Execute the capacity scaling algorithm |
|---|
| 875 | ProblemType startWithScaling() { |
|---|
| 876 | // Perform capacity scaling phases |
|---|
| 877 | int s, t; |
|---|
| 878 | ResidualDijkstra _dijkstra(*this); |
|---|
| 879 | while (true) { |
|---|
| 880 | // Saturate all arcs not satisfying the optimality condition |
|---|
| 881 | int last_out; |
|---|
| 882 | for (int u = 0; u != _node_num; ++u) { |
|---|
| 883 | last_out = _sum_supply < 0 ? |
|---|
| 884 | _first_out[u+1] : _first_out[u+1] - 1; |
|---|
| 885 | for (int a = _first_out[u]; a != last_out; ++a) { |
|---|
| 886 | int v = _target[a]; |
|---|
| 887 | Cost c = _cost[a] + _pi[u] - _pi[v]; |
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| 888 | Value rc = _res_cap[a]; |
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| 889 | if (c < 0 && rc >= _delta) { |
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| 890 | _excess[u] -= rc; |
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| 891 | _excess[v] += rc; |
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| 892 | _res_cap[a] = 0; |
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| 893 | _res_cap[_reverse[a]] += rc; |
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| 894 | } |
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| 895 | } |
|---|
| 896 | } |
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| 897 | |
|---|
| 898 | // Find excess nodes and deficit nodes |
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| 899 | _excess_nodes.clear(); |
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| 900 | _deficit_nodes.clear(); |
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| 901 | for (int u = 0; u != _node_num; ++u) { |
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| 902 | Value ex = _excess[u]; |
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| 903 | if (ex >= _delta) _excess_nodes.push_back(u); |
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| 904 | if (ex <= -_delta) _deficit_nodes.push_back(u); |
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| 905 | } |
|---|
| 906 | int next_node = 0, next_def_node = 0; |
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| 907 | |
|---|
| 908 | // Find augmenting shortest paths |
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| 909 | while (next_node < int(_excess_nodes.size())) { |
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| 910 | // Check deficit nodes |
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| 911 | if (_delta > 1) { |
|---|
| 912 | bool delta_deficit = false; |
|---|
| 913 | for ( ; next_def_node < int(_deficit_nodes.size()); |
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| 914 | ++next_def_node ) { |
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| 915 | if (_excess[_deficit_nodes[next_def_node]] <= -_delta) { |
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| 916 | delta_deficit = true; |
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| 917 | break; |
|---|
| 918 | } |
|---|
| 919 | } |
|---|
| 920 | if (!delta_deficit) break; |
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| 921 | } |
|---|
| 922 | |
|---|
| 923 | // Run Dijkstra in the residual network |
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| 924 | s = _excess_nodes[next_node]; |
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| 925 | if ((t = _dijkstra.run(s, _delta)) == -1) { |
|---|
| 926 | if (_delta > 1) { |
|---|
| 927 | ++next_node; |
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| 928 | continue; |
|---|
| 929 | } |
|---|
| 930 | return INFEASIBLE; |
|---|
| 931 | } |
|---|
| 932 | |
|---|
| 933 | // Augment along a shortest path from s to t |
|---|
| 934 | Value d = std::min(_excess[s], -_excess[t]); |
|---|
| 935 | int u = t; |
|---|
| 936 | int a; |
|---|
| 937 | if (d > _delta) { |
|---|
| 938 | while ((a = _pred[u]) != -1) { |
|---|
| 939 | if (_res_cap[a] < d) d = _res_cap[a]; |
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| 940 | u = _source[a]; |
|---|
| 941 | } |
|---|
| 942 | } |
|---|
| 943 | u = t; |
|---|
| 944 | while ((a = _pred[u]) != -1) { |
|---|
| 945 | _res_cap[a] -= d; |
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| 946 | _res_cap[_reverse[a]] += d; |
|---|
| 947 | u = _source[a]; |
|---|
| 948 | } |
|---|
| 949 | _excess[s] -= d; |
|---|
| 950 | _excess[t] += d; |
|---|
| 951 | |
|---|
| 952 | if (_excess[s] < _delta) ++next_node; |
|---|
| 953 | } |
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| 954 | |
|---|
| 955 | if (_delta == 1) break; |
|---|
| 956 | _delta = _delta <= _factor ? 1 : _delta / _factor; |
|---|
| 957 | } |
|---|
| 958 | |
|---|
| 959 | return OPTIMAL; |
|---|
| 960 | } |
|---|
| 961 | |
|---|
| 962 | // Execute the successive shortest path algorithm |
|---|
| 963 | ProblemType startWithoutScaling() { |
|---|
| 964 | // Find excess nodes |
|---|
| 965 | _excess_nodes.clear(); |
|---|
| 966 | for (int i = 0; i != _node_num; ++i) { |
|---|
| 967 | if (_excess[i] > 0) _excess_nodes.push_back(i); |
|---|
| 968 | } |
|---|
| 969 | if (_excess_nodes.size() == 0) return OPTIMAL; |
|---|
| 970 | int next_node = 0; |
|---|
| 971 | |
|---|
| 972 | // Find shortest paths |
|---|
| 973 | int s, t; |
|---|
| 974 | ResidualDijkstra _dijkstra(*this); |
|---|
| 975 | while ( _excess[_excess_nodes[next_node]] > 0 || |
|---|
| 976 | ++next_node < int(_excess_nodes.size()) ) |
|---|
| 977 | { |
|---|
| 978 | // Run Dijkstra in the residual network |
|---|
| 979 | s = _excess_nodes[next_node]; |
|---|
| 980 | if ((t = _dijkstra.run(s)) == -1) return INFEASIBLE; |
|---|
| 981 | |
|---|
| 982 | // Augment along a shortest path from s to t |
|---|
| 983 | Value d = std::min(_excess[s], -_excess[t]); |
|---|
| 984 | int u = t; |
|---|
| 985 | int a; |
|---|
| 986 | if (d > 1) { |
|---|
| 987 | while ((a = _pred[u]) != -1) { |
|---|
| 988 | if (_res_cap[a] < d) d = _res_cap[a]; |
|---|
| 989 | u = _source[a]; |
|---|
| 990 | } |
|---|
| 991 | } |
|---|
| 992 | u = t; |
|---|
| 993 | while ((a = _pred[u]) != -1) { |
|---|
| 994 | _res_cap[a] -= d; |
|---|
| 995 | _res_cap[_reverse[a]] += d; |
|---|
| 996 | u = _source[a]; |
|---|
| 997 | } |
|---|
| 998 | _excess[s] -= d; |
|---|
| 999 | _excess[t] += d; |
|---|
| 1000 | } |
|---|
| 1001 | |
|---|
| 1002 | return OPTIMAL; |
|---|
| 1003 | } |
|---|
| 1004 | |
|---|
| 1005 | }; //class CapacityScaling |
|---|
| 1006 | |
|---|
| 1007 | ///@} |
|---|
| 1008 | |
|---|
| 1009 | } //namespace lemon |
|---|
| 1010 | |
|---|
| 1011 | #endif //LEMON_CAPACITY_SCALING_H |
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