| [780] | 1 | // -*- C++ -*- | 
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|  | 2 | #ifndef HUGO_DFS_H | 
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|  | 3 | #define HUGO_DFS_H | 
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|  | 4 |  | 
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|  | 5 | ///\ingroup flowalgs | 
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|  | 6 | ///\file | 
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| [781] | 7 | ///\brief %DFS algorithm. | 
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| [780] | 8 | /// | 
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|  | 9 | ///\todo Revise Manual. | 
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|  | 10 |  | 
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|  | 11 | #include <hugo/bin_heap.h> | 
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|  | 12 | #include <hugo/invalid.h> | 
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|  | 13 |  | 
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|  | 14 | namespace hugo { | 
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|  | 15 |  | 
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|  | 16 | /// \addtogroup flowalgs | 
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|  | 17 | /// @{ | 
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|  | 18 |  | 
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| [781] | 19 | ///%DFS algorithm class. | 
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| [780] | 20 |  | 
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| [781] | 21 | ///This class provides an efficient implementation of %DFS algorithm. | 
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| [780] | 22 | /// | 
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|  | 23 | ///\param GR The graph type the algorithm runs on. | 
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|  | 24 | /// | 
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| [781] | 25 | ///\author Alpar Juttner | 
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| [780] | 26 |  | 
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|  | 27 | #ifdef DOXYGEN | 
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|  | 28 | template <typename GR> | 
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|  | 29 | #else | 
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|  | 30 | template <typename GR> | 
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|  | 31 | #endif | 
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|  | 32 | class Dfs{ | 
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|  | 33 | public: | 
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|  | 34 | ///The type of the underlying graph. | 
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|  | 35 | typedef GR Graph; | 
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| [802] | 36 | /// . | 
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| [780] | 37 | typedef typename Graph::Node Node; | 
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| [802] | 38 | /// . | 
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| [780] | 39 | typedef typename Graph::NodeIt NodeIt; | 
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| [802] | 40 | /// . | 
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| [780] | 41 | typedef typename Graph::Edge Edge; | 
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| [802] | 42 | /// . | 
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| [780] | 43 | typedef typename Graph::OutEdgeIt OutEdgeIt; | 
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|  | 44 |  | 
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|  | 45 | ///\brief The type of the map that stores the last | 
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| [781] | 46 | ///edges of the paths on the %DFS tree. | 
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| [780] | 47 | typedef typename Graph::template NodeMap<Edge> PredMap; | 
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|  | 48 | ///\brief The type of the map that stores the last but one | 
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| [781] | 49 | ///nodes of the paths on the %DFS tree. | 
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| [780] | 50 | typedef typename Graph::template NodeMap<Node> PredNodeMap; | 
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| [781] | 51 | ///The type of the map that stores the dists of the nodes on the %DFS tree. | 
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| [780] | 52 | typedef typename Graph::template NodeMap<int> DistMap; | 
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|  | 53 |  | 
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|  | 54 | private: | 
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| [802] | 55 | /// Pointer to the underlying graph. | 
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| [780] | 56 | const Graph *G; | 
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| [802] | 57 | ///Pointer to the map of predecessors edges. | 
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| [780] | 58 | PredMap *predecessor; | 
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| [802] | 59 | ///Indicates if \ref predecessor is locally allocated (\c true) or not. | 
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| [780] | 60 | bool local_predecessor; | 
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| [802] | 61 | ///Pointer to the map of predecessors nodes. | 
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| [780] | 62 | PredNodeMap *pred_node; | 
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| [802] | 63 | ///Indicates if \ref pred_node is locally allocated (\c true) or not. | 
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| [780] | 64 | bool local_pred_node; | 
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| [802] | 65 | ///Pointer to the map of distances. | 
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| [780] | 66 | DistMap *distance; | 
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| [802] | 67 | ///Indicates if \ref distance is locally allocated (\c true) or not. | 
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| [780] | 68 | bool local_distance; | 
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|  | 69 |  | 
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| [802] | 70 | ///The source node of the last execution. | 
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| [780] | 71 | Node source; | 
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|  | 72 |  | 
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|  | 73 |  | 
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| [781] | 74 | ///Initializes the maps. | 
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| [780] | 75 | void init_maps() | 
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|  | 76 | { | 
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|  | 77 | if(!predecessor) { | 
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|  | 78 | local_predecessor = true; | 
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|  | 79 | predecessor = new PredMap(*G); | 
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|  | 80 | } | 
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|  | 81 | if(!pred_node) { | 
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|  | 82 | local_pred_node = true; | 
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|  | 83 | pred_node = new PredNodeMap(*G); | 
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|  | 84 | } | 
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|  | 85 | if(!distance) { | 
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|  | 86 | local_distance = true; | 
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|  | 87 | distance = new DistMap(*G); | 
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|  | 88 | } | 
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|  | 89 | } | 
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|  | 90 |  | 
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|  | 91 | public : | 
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| [802] | 92 | ///Constructor. | 
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|  | 93 |  | 
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|  | 94 | ///\param _G the graph the algorithm will run on. | 
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| [780] | 95 | Dfs(const Graph& _G) : | 
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|  | 96 | G(&_G), | 
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|  | 97 | predecessor(NULL), local_predecessor(false), | 
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|  | 98 | pred_node(NULL), local_pred_node(false), | 
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|  | 99 | distance(NULL), local_distance(false) | 
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|  | 100 | { } | 
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|  | 101 |  | 
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| [802] | 102 | ///Destructor. | 
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| [780] | 103 | ~Dfs() | 
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|  | 104 | { | 
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|  | 105 | if(local_predecessor) delete predecessor; | 
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|  | 106 | if(local_pred_node) delete pred_node; | 
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|  | 107 | if(local_distance) delete distance; | 
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|  | 108 | } | 
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|  | 109 |  | 
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|  | 110 | ///Sets the map storing the predecessor edges. | 
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|  | 111 |  | 
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|  | 112 | ///Sets the map storing the predecessor edges. | 
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|  | 113 | ///If you don't use this function before calling \ref run(), | 
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|  | 114 | ///it will allocate one. The destuctor deallocates this | 
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|  | 115 | ///automatically allocated map, of course. | 
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|  | 116 | ///\return <tt> (*this) </tt> | 
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|  | 117 | Dfs &setPredMap(PredMap &m) | 
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|  | 118 | { | 
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|  | 119 | if(local_predecessor) { | 
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|  | 120 | delete predecessor; | 
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|  | 121 | local_predecessor=false; | 
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|  | 122 | } | 
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|  | 123 | predecessor = &m; | 
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|  | 124 | return *this; | 
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|  | 125 | } | 
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|  | 126 |  | 
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|  | 127 | ///Sets the map storing the predecessor nodes. | 
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|  | 128 |  | 
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|  | 129 | ///Sets the map storing the predecessor nodes. | 
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|  | 130 | ///If you don't use this function before calling \ref run(), | 
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|  | 131 | ///it will allocate one. The destuctor deallocates this | 
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|  | 132 | ///automatically allocated map, of course. | 
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|  | 133 | ///\return <tt> (*this) </tt> | 
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|  | 134 | Dfs &setPredNodeMap(PredNodeMap &m) | 
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|  | 135 | { | 
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|  | 136 | if(local_pred_node) { | 
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|  | 137 | delete pred_node; | 
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|  | 138 | local_pred_node=false; | 
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|  | 139 | } | 
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|  | 140 | pred_node = &m; | 
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|  | 141 | return *this; | 
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|  | 142 | } | 
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|  | 143 |  | 
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|  | 144 | ///Sets the map storing the distances calculated by the algorithm. | 
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|  | 145 |  | 
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|  | 146 | ///Sets the map storing the distances calculated by the algorithm. | 
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|  | 147 | ///If you don't use this function before calling \ref run(), | 
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|  | 148 | ///it will allocate one. The destuctor deallocates this | 
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|  | 149 | ///automatically allocated map, of course. | 
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|  | 150 | ///\return <tt> (*this) </tt> | 
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|  | 151 | Dfs &setDistMap(DistMap &m) | 
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|  | 152 | { | 
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|  | 153 | if(local_distance) { | 
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|  | 154 | delete distance; | 
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|  | 155 | local_distance=false; | 
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|  | 156 | } | 
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|  | 157 | distance = &m; | 
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|  | 158 | return *this; | 
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|  | 159 | } | 
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|  | 160 |  | 
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|  | 161 | ///Runs %DFS algorithm from node \c s. | 
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|  | 162 |  | 
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|  | 163 | ///This method runs the %DFS algorithm from a root node \c s | 
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|  | 164 | ///in order to | 
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| [781] | 165 | ///compute | 
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|  | 166 | ///- a %DFS tree and | 
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|  | 167 | ///- the distance of each node from the root on this tree. | 
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| [780] | 168 |  | 
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|  | 169 | void run(Node s) { | 
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|  | 170 |  | 
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|  | 171 | init_maps(); | 
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|  | 172 |  | 
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|  | 173 | source = s; | 
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|  | 174 |  | 
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|  | 175 | for ( NodeIt u(*G) ; u!=INVALID ; ++u ) { | 
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|  | 176 | predecessor->set(u,INVALID); | 
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|  | 177 | pred_node->set(u,INVALID); | 
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|  | 178 | } | 
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|  | 179 |  | 
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|  | 180 | int N=G->nodeNum(); | 
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|  | 181 | std::vector<typename Graph::OutEdgeIt> Q(N); | 
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|  | 182 |  | 
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|  | 183 | int Qh=0; | 
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|  | 184 |  | 
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|  | 185 | G->first(Q[Qh],s); | 
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|  | 186 | distance->set(s, 0); | 
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|  | 187 |  | 
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|  | 188 | Node n=s; | 
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|  | 189 | Node m; | 
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|  | 190 | OutEdgeIt e; | 
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|  | 191 | do { | 
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|  | 192 | if((e=Q[Qh])!=INVALID) | 
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|  | 193 | if((m=G->head(e))!=s && (*predecessor)[m=G->head(e)]==INVALID) { | 
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|  | 194 | predecessor->set(m,e); | 
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|  | 195 | pred_node->set(m,n); | 
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|  | 196 | G->first(Q[++Qh],m); | 
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|  | 197 | distance->set(m,Qh); | 
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|  | 198 | n=m; | 
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|  | 199 | } | 
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|  | 200 | else ++Q[Qh]; | 
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|  | 201 | else if(--Qh>=0) n=G->tail(Q[Qh]); | 
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|  | 202 | } while(Qh>=0); | 
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|  | 203 | } | 
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|  | 204 |  | 
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| [781] | 205 | ///The distance of a node from the root on the %DFS tree. | 
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| [780] | 206 |  | 
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| [781] | 207 | ///Returns the distance of a node from the root on the %DFS tree. | 
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| [780] | 208 | ///\pre \ref run() must be called before using this function. | 
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|  | 209 | ///\warning If node \c v in unreachable from the root the return value | 
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|  | 210 | ///of this funcion is undefined. | 
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|  | 211 | int dist(Node v) const { return (*distance)[v]; } | 
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|  | 212 |  | 
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| [781] | 213 | ///Returns the 'previous edge' of the %DFS path tree. | 
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| [780] | 214 |  | 
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| [781] | 215 | ///For a node \c v it returns the last edge of the path on the %DFS tree | 
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|  | 216 | ///from the root to \c | 
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| [780] | 217 | ///v. It is \ref INVALID | 
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|  | 218 | ///if \c v is unreachable from the root or if \c v=s. The | 
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| [781] | 219 | ///%DFS tree used here is equal to the %DFS tree used in | 
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| [780] | 220 | ///\ref predNode(Node v).  \pre \ref run() must be called before using | 
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|  | 221 | ///this function. | 
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|  | 222 | Edge pred(Node v) const { return (*predecessor)[v]; } | 
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|  | 223 |  | 
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| [781] | 224 | ///Returns the 'previous node' of the %DFS tree. | 
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| [780] | 225 |  | 
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| [781] | 226 | ///For a node \c v it returns the 'previous node' on the %DFS tree, | 
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|  | 227 | ///i.e. it returns the last but one node of the path from the | 
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|  | 228 | ///root to \c /v on the %DFS tree. | 
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|  | 229 | ///It is INVALID if \c v is unreachable from the root or if | 
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|  | 230 | ///\c v=s. | 
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|  | 231 | ///\pre \ref run() must be called before | 
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| [780] | 232 | ///using this function. | 
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|  | 233 | Node predNode(Node v) const { return (*pred_node)[v]; } | 
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|  | 234 |  | 
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| [781] | 235 | ///Returns a reference to the NodeMap of distances on the %DFS tree. | 
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| [780] | 236 |  | 
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| [781] | 237 | ///Returns a reference to the NodeMap of distances on the %DFS tree. | 
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|  | 238 | ///\pre \ref run() must | 
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| [780] | 239 | ///be called before using this function. | 
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|  | 240 | const DistMap &distMap() const { return *distance;} | 
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|  | 241 |  | 
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| [781] | 242 | ///Returns a reference to the %DFS tree map. | 
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| [780] | 243 |  | 
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|  | 244 | ///Returns a reference to the NodeMap of the edges of the | 
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| [781] | 245 | ///%DFS tree. | 
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| [780] | 246 | ///\pre \ref run() must be called before using this function. | 
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|  | 247 | const PredMap &predMap() const { return *predecessor;} | 
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|  | 248 |  | 
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| [781] | 249 | ///Returns a reference to the map of last but one nodes of the %DFS tree. | 
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| [780] | 250 |  | 
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| [781] | 251 | ///Returns a reference to the NodeMap of the last but one nodes of the paths | 
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|  | 252 | ///on the | 
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|  | 253 | ///%DFS tree. | 
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| [780] | 254 | ///\pre \ref run() must be called before using this function. | 
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|  | 255 | const PredNodeMap &predNodeMap() const { return *pred_node;} | 
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|  | 256 |  | 
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|  | 257 | ///Checks if a node is reachable from the root. | 
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|  | 258 |  | 
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|  | 259 | ///Returns \c true if \c v is reachable from the root. | 
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| [802] | 260 | ///\note The root node is reported to be reached! | 
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| [780] | 261 | /// | 
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|  | 262 | ///\pre \ref run() must be called before using this function. | 
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|  | 263 | /// | 
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|  | 264 | bool reached(Node v) { return v==source || (*predecessor)[v]!=INVALID; } | 
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|  | 265 |  | 
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|  | 266 | }; | 
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|  | 267 |  | 
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|  | 268 | /// @} | 
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|  | 269 |  | 
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|  | 270 | } //END OF NAMESPACE HUGO | 
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|  | 271 |  | 
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|  | 272 | #endif | 
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|  | 273 |  | 
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|  | 274 |  | 
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