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@@ -26,440 +26,336 @@
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#include <algorithm>
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#include <lemon/bits/invalid.h>
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#include <lemon/bits/utility.h>
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#include <lemon/maps.h>
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#include <lemon/bits/traits.h>
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#include <lemon/bits/alteration_notifier.h>
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#include <lemon/bits/default_map.h>
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///\ingroup gutils
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///\file
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///\brief Digraph utilities.
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///\brief Graph utilities.
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namespace lemon {
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/// \addtogroup gutils
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/// @{
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///Creates convenience typedefs for the digraph types and iterators
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///This \c \#define creates convenience typedefs for the following types
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///of \c Digraph: \c Node, \c NodeIt, \c Arc, \c ArcIt, \c InArcIt,
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///\c OutArcIt
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///\note If \c G it a template parameter, it should be used in this way.
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///\code
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/// GRAPH_TYPEDEFS(typename G);
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///\endcode
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///
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///\warning There are no typedefs for the digraph maps because of the lack of
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///template typedefs in C++.
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#define GRAPH_TYPEDEFS(Digraph) \
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///\c OutArcIt, \c BoolNodeMap, \c IntNodeMap, \c DoubleNodeMap,
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///\c BoolArcMap, \c IntArcMap, \c DoubleArcMap.
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#define DIGRAPH_TYPEDEFS(Digraph) \
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typedef Digraph:: Node Node; \
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typedef Digraph:: NodeIt NodeIt; \
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typedef Digraph:: Arc Arc; \
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typedef Digraph:: ArcIt ArcIt; \
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typedef Digraph:: InArcIt InArcIt; \
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typedef Digraph::OutArcIt OutArcIt
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///Creates convenience typedefs for the graph types and iterators
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///This \c \#define creates the same convenience typedefs as defined by
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///\ref GRAPH_TYPEDEFS(Digraph) and three more, namely it creates
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///\c Edge, \c EdgeIt, \c IncArcIt,
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///This \c \#define creates the same convenience typedefs as defined
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///by \ref DIGRAPH_TYPEDEFS(Graph) and six more, namely it creates
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///\c Edge, \c EdgeIt, \c IncEdgeIt, \c BoolEdgeMap, \c IntEdgeMap,
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///\c DoubleEdgeMap.
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#define GRAPH_TYPEDEFS(Graph) \
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DIGRAPH_TYPEDEFS(Graph); \
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typedef Graph::Edge Edge; \
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typedef Graph::EdgeIt EdgeIt; \
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typedef Graph::IncEdgeIt IncEdgeIt
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/// \brief Function to count the items in the graph.
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///
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///\note If \c G it a template parameter, it should be used in this way.
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///\code
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/// UGRAPH_TYPEDEFS(typename G);
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///\endcode
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///
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///\warning There are no typedefs for the digraph maps because of the lack of
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///template typedefs in C++.
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#define UGRAPH_TYPEDEFS(Digraph) \
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GRAPH_TYPEDEFS(Digraph); \
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typedef Digraph:: Edge Edge; \
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typedef Digraph:: EdgeIt EdgeIt; \
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typedef Digraph:: IncArcIt IncArcIt
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///\brief Creates convenience typedefs for the bipartite digraph
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///types and iterators
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///This \c \#define creates the same convenience typedefs as defined by
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///\ref UGRAPH_TYPEDEFS(Digraph) and two more, namely it creates
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///\c RedIt, \c BlueIt,
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///
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///\note If \c G it a template parameter, it should be used in this way.
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///\code
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/// BPUGRAPH_TYPEDEFS(typename G);
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///\endcode
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///
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///\warning There are no typedefs for the digraph maps because of the lack of
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///template typedefs in C++.
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#define BPUGRAPH_TYPEDEFS(Digraph) \
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UGRAPH_TYPEDEFS(Digraph); \
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typedef Digraph::Red Red; \
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typedef Digraph::Blue Blue; \
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typedef Digraph::RedIt RedIt; \
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typedef Digraph::BlueIt BlueIt
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/// \brief Function to count the items in the digraph.
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///
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/// This function counts the items (nodes, arcs etc) in the digraph.
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/// This function counts the items (nodes, arcs etc) in the graph.
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/// The complexity of the function is O(n) because
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/// it iterates on all of the items.
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template <typename Digraph, typename Item>
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inline int countItems(const Digraph& g) {
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typedef typename ItemSetTraits<Digraph, Item>::ItemIt ItemIt;
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template <typename Graph, typename Item>
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inline int countItems(const Graph& g) {
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typedef typename ItemSetTraits<Graph, Item>::ItemIt ItemIt;
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int num = 0;
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for (ItemIt it(g); it != INVALID; ++it) {
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++num;
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}
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return num;
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}
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// Node counting:
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namespace _digraph_utils_bits {
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template <typename Digraph, typename Enable = void>
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namespace _graph_utils_bits {
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template <typename Graph, typename Enable = void>
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struct CountNodesSelector {
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static int count(const Digraph &g) {
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return countItems<Digraph, typename Digraph::Node>(g);
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static int count(const Graph &g) {
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return countItems<Graph, typename Graph::Node>(g);
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}
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};
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template <typename Digraph>
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template <typename Graph>
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struct CountNodesSelector<
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Digraph, typename
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enable_if<typename Digraph::NodeNumTag, void>::type>
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Graph, typename
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enable_if<typename Graph::NodeNumTag, void>::type>
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{
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static int count(const Digraph &g) {
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static int count(const Graph &g) {
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return g.nodeNum();
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}
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};
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}
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/// \brief Function to count the nodes in the digraph.
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/// \brief Function to count the nodes in the graph.
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///
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/// This function counts the nodes in the digraph.
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/// This function counts the nodes in the graph.
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/// The complexity of the function is O(n) but for some
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/// digraph structures it is specialized to run in O(1).
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/// graph structures it is specialized to run in O(1).
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///
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/// If the digraph contains a \e nodeNum() member function and a
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/// If the graph contains a \e nodeNum() member function and a
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/// \e NodeNumTag tag then this function calls directly the member
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/// function to query the cardinality of the node set.
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template <typename Digraph>
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inline int countNodes(const Digraph& g) {
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return _digraph_utils_bits::CountNodesSelector<Digraph>::count(g);
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template <typename Graph>
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inline int countNodes(const Graph& g) {
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return _graph_utils_bits::CountNodesSelector<Graph>::count(g);
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}
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namespace _digraph_utils_bits {
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template <typename Digraph, typename Enable = void>
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struct CountRedsSelector {
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static int count(const Digraph &g) {
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return countItems<Digraph, typename Digraph::Red>(g);
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// Arc counting:
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namespace _graph_utils_bits {
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template <typename Graph, typename Enable = void>
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struct CountArcsSelector {
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static int count(const Graph &g) {
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return countItems<Graph, typename Graph::Arc>(g);
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}
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};
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template <typename Digraph>
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struct CountRedsSelector<
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Digraph, typename
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enable_if<typename Digraph::NodeNumTag, void>::type>
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template <typename Graph>
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struct CountArcsSelector<
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Graph,
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typename enable_if<typename Graph::ArcNumTag, void>::type>
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{
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static int count(const Digraph &g) {
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return g.redNum();
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}
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};
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}
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/// \brief Function to count the reds in the digraph.
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///
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/// This function counts the reds in the digraph.
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/// The complexity of the function is O(an) but for some
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/// digraph structures it is specialized to run in O(1).
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///
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/// If the digraph contains an \e redNum() member function and a
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/// \e NodeNumTag tag then this function calls directly the member
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/// function to query the cardinality of the A-node set.
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template <typename Digraph>
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inline int countReds(const Digraph& g) {
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return _digraph_utils_bits::CountRedsSelector<Digraph>::count(g);
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}
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namespace _digraph_utils_bits {
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template <typename Digraph, typename Enable = void>
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struct CountBluesSelector {
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static int count(const Digraph &g) {
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return countItems<Digraph, typename Digraph::Blue>(g);
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}
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};
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template <typename Digraph>
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struct CountBluesSelector<
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Digraph, typename
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enable_if<typename Digraph::NodeNumTag, void>::type>
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{
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static int count(const Digraph &g) {
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return g.blueNum();
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}
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};
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}
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/// \brief Function to count the blues in the digraph.
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///
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/// This function counts the blues in the digraph.
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/// The complexity of the function is O(bn) but for some
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/// digraph structures it is specialized to run in O(1).
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///
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/// If the digraph contains a \e blueNum() member function and a
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/// \e NodeNumTag tag then this function calls directly the member
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/// function to query the cardinality of the B-node set.
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template <typename Digraph>
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inline int countBlues(const Digraph& g) {
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return _digraph_utils_bits::CountBluesSelector<Digraph>::count(g);
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}
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// Arc counting:
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namespace _digraph_utils_bits {
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template <typename Digraph, typename Enable = void>
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struct CountArcsSelector {
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static int count(const Digraph &g) {
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return countItems<Digraph, typename Digraph::Arc>(g);
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}
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};
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template <typename Digraph>
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struct CountArcsSelector<
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Digraph,
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typename enable_if<typename Digraph::ArcNumTag, void>::type>
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{
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static int count(const Digraph &g) {
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static int count(const Graph &g) {
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return g.arcNum();
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}
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};
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}
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/// \brief Function to count the arcs in the digraph.
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/// \brief Function to count the arcs in the graph.
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///
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/// This function counts the arcs in the digraph.
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/// This function counts the arcs in the graph.
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/// The complexity of the function is O(e) but for some
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/// digraph structures it is specialized to run in O(1).
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/// graph structures it is specialized to run in O(1).
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///
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/// If the digraph contains a \e arcNum() member function and a
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/// \e ArcNumTag tag then this function calls directly the member
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/// If the graph contains a \e arcNum() member function and a
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/// \e EdgeNumTag tag then this function calls directly the member
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/// function to query the cardinality of the arc set.
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template <typename Digraph>
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inline int countArcs(const Digraph& g) {
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return _digraph_utils_bits::CountArcsSelector<Digraph>::count(g);
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template <typename Graph>
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inline int countArcs(const Graph& g) {
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return _graph_utils_bits::CountArcsSelector<Graph>::count(g);
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}
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// Undirected arc counting:
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namespace _digraph_utils_bits {
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template <typename Digraph, typename Enable = void>
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// Edge counting:
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namespace _graph_utils_bits {
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template <typename Graph, typename Enable = void>
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struct CountEdgesSelector {
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static int count(const Digraph &g) {
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return countItems<Digraph, typename Digraph::Edge>(g);
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static int count(const Graph &g) {
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return countItems<Graph, typename Graph::Edge>(g);
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}
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};
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template <typename Digraph>
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template <typename Graph>
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struct CountEdgesSelector<
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Digraph,
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typename enable_if<typename Digraph::ArcNumTag, void>::type>
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Graph,
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typename enable_if<typename Graph::EdgeNumTag, void>::type>
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{
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static int count(const Digraph &g) {
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static int count(const Graph &g) {
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return g.edgeNum();
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}
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};
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}
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/// \brief Function to count the edges in the digraph.
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/// \brief Function to count the edges in the graph.
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///
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/// This function counts the edges in the digraph.
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/// The complexity of the function is O(e) but for some
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/// digraph structures it is specialized to run in O(1).
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/// This function counts the edges in the graph.
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/// The complexity of the function is O(m) but for some
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/// graph structures it is specialized to run in O(1).
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///
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/// If the digraph contains a \e edgeNum() member function and a
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/// \e ArcNumTag tag then this function calls directly the member
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/// If the graph contains a \e edgeNum() member function and a
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/// \e EdgeNumTag tag then this function calls directly the member
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/// function to query the cardinality of the edge set.
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template <typename Digraph>
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inline int countEdges(const Digraph& g) {
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return _digraph_utils_bits::CountEdgesSelector<Digraph>::count(g);
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template <typename Graph>
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inline int countEdges(const Graph& g) {
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return _graph_utils_bits::CountEdgesSelector<Graph>::count(g);
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}
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template <typename Digraph, typename DegIt>
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inline int countNodeDegree(const Digraph& _g, const typename Digraph::Node& _n) {
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template <typename Graph, typename DegIt>
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inline int countNodeDegree(const Graph& _g, const typename Graph::Node& _n) {
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int num = 0;
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for (DegIt it(_g, _n); it != INVALID; ++it) {
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++num;
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}
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return num;
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}
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/// \brief Function to count the number of the out-arcs from node \c n.
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///
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/// This function counts the number of the out-arcs from node \c n
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/// in the digraph.
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template <typename Digraph>
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inline int countOutArcs(const Digraph& _g, const typename Digraph::Node& _n) {
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return countNodeDegree<Digraph, typename Digraph::OutArcIt>(_g, _n);
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/// in the graph.
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template <typename Graph>
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inline int countOutArcs(const Graph& _g, const typename Graph::Node& _n) {
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return countNodeDegree<Graph, typename Graph::OutArcIt>(_g, _n);
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}
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/// \brief Function to count the number of the in-arcs to node \c n.
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///
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/// This function counts the number of the in-arcs to node \c n
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/// in the digraph.
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template <typename Digraph>
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inline int countInArcs(const Digraph& _g, const typename Digraph::Node& _n) {
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return countNodeDegree<Digraph, typename Digraph::InArcIt>(_g, _n);
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/// in the graph.
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template <typename Graph>
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218 |
inline int countInArcs(const Graph& _g, const typename Graph::Node& _n) {
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|
219 |
return countNodeDegree<Graph, typename Graph::InArcIt>(_g, _n);
|
| 324 |
220 |
}
|
| 325 |
221 |
|
| 326 |
|
/// \brief Function to count the number of the inc-arcs to node \c n.
|
|
222 |
/// \brief Function to count the number of the inc-edges to node \c n.
|
| 327 |
223 |
///
|
| 328 |
|
/// This function counts the number of the inc-arcs to node \c n
|
| 329 |
|
/// in the digraph.
|
| 330 |
|
template <typename Digraph>
|
| 331 |
|
inline int countIncArcs(const Digraph& _g, const typename Digraph::Node& _n) {
|
| 332 |
|
return countNodeDegree<Digraph, typename Digraph::IncArcIt>(_g, _n);
|
|
224 |
/// This function counts the number of the inc-edges to node \c n
|
|
225 |
/// in the graph.
|
|
226 |
template <typename Graph>
|
|
227 |
inline int countIncEdges(const Graph& _g, const typename Graph::Node& _n) {
|
|
228 |
return countNodeDegree<Graph, typename Graph::IncEdgeIt>(_g, _n);
|
| 333 |
229 |
}
|
| 334 |
230 |
|
| 335 |
|
namespace _digraph_utils_bits {
|
| 336 |
|
|
| 337 |
|
template <typename Digraph, typename Enable = void>
|
|
231 |
namespace _graph_utils_bits {
|
|
232 |
|
|
233 |
template <typename Graph, typename Enable = void>
|
| 338 |
234 |
struct FindArcSelector {
|
| 339 |
|
typedef typename Digraph::Node Node;
|
| 340 |
|
typedef typename Digraph::Arc Arc;
|
| 341 |
|
static Arc find(const Digraph &g, Node u, Node v, Arc e) {
|
|
235 |
typedef typename Graph::Node Node;
|
|
236 |
typedef typename Graph::Arc Arc;
|
|
237 |
static Arc find(const Graph &g, Node u, Node v, Arc e) {
|
| 342 |
238 |
if (e == INVALID) {
|
| 343 |
239 |
g.firstOut(e, u);
|
| 344 |
240 |
} else {
|
| 345 |
241 |
g.nextOut(e);
|
| 346 |
242 |
}
|
| 347 |
243 |
while (e != INVALID && g.target(e) != v) {
|
| 348 |
244 |
g.nextOut(e);
|
| 349 |
245 |
}
|
| 350 |
246 |
return e;
|
| 351 |
247 |
}
|
| 352 |
248 |
};
|
| 353 |
249 |
|
| 354 |
|
template <typename Digraph>
|
|
250 |
template <typename Graph>
|
| 355 |
251 |
struct FindArcSelector<
|
| 356 |
|
Digraph,
|
| 357 |
|
typename enable_if<typename Digraph::FindArcTag, void>::type>
|
|
252 |
Graph,
|
|
253 |
typename enable_if<typename Graph::FindEdgeTag, void>::type>
|
| 358 |
254 |
{
|
| 359 |
|
typedef typename Digraph::Node Node;
|
| 360 |
|
typedef typename Digraph::Arc Arc;
|
| 361 |
|
static Arc find(const Digraph &g, Node u, Node v, Arc prev) {
|
|
255 |
typedef typename Graph::Node Node;
|
|
256 |
typedef typename Graph::Arc Arc;
|
|
257 |
static Arc find(const Graph &g, Node u, Node v, Arc prev) {
|
| 362 |
258 |
return g.findArc(u, v, prev);
|
| 363 |
259 |
}
|
| 364 |
260 |
};
|
| 365 |
261 |
}
|
| 366 |
262 |
|
| 367 |
|
/// \brief Finds an arc between two nodes of a digraph.
|
|
263 |
/// \brief Finds an arc between two nodes of a graph.
|
| 368 |
264 |
///
|
| 369 |
|
/// Finds an arc from node \c u to node \c v in digraph \c g.
|
|
265 |
/// Finds an arc from node \c u to node \c v in graph \c g.
|
| 370 |
266 |
///
|
| 371 |
267 |
/// If \c prev is \ref INVALID (this is the default value), then
|
| 372 |
268 |
/// it finds the first arc from \c u to \c v. Otherwise it looks for
|
| 373 |
269 |
/// the next arc from \c u to \c v after \c prev.
|
| 374 |
270 |
/// \return The found arc or \ref INVALID if there is no such an arc.
|
| 375 |
271 |
///
|
| 376 |
272 |
/// Thus you can iterate through each arc from \c u to \c v as it follows.
|
| 377 |
273 |
///\code
|
| 378 |
274 |
/// for(Arc e=findArc(g,u,v);e!=INVALID;e=findArc(g,u,v,e)) {
|
| 379 |
275 |
/// ...
|
| 380 |
276 |
/// }
|
| 381 |
277 |
///\endcode
|
| 382 |
278 |
///
|
| 383 |
279 |
///\sa ArcLookUp
|
| 384 |
280 |
///\sa AllArcLookUp
|
| 385 |
281 |
///\sa DynArcLookUp
|
| 386 |
282 |
///\sa ConArcIt
|
| 387 |
|
template <typename Digraph>
|
| 388 |
|
inline typename Digraph::Arc
|
| 389 |
|
findArc(const Digraph &g, typename Digraph::Node u, typename Digraph::Node v,
|
| 390 |
|
typename Digraph::Arc prev = INVALID) {
|
| 391 |
|
return _digraph_utils_bits::FindArcSelector<Digraph>::find(g, u, v, prev);
|
|
283 |
template <typename Graph>
|
|
284 |
inline typename Graph::Arc
|
|
285 |
findArc(const Graph &g, typename Graph::Node u, typename Graph::Node v,
|
|
286 |
typename Graph::Arc prev = INVALID) {
|
|
287 |
return _graph_utils_bits::FindArcSelector<Graph>::find(g, u, v, prev);
|
| 392 |
288 |
}
|
| 393 |
289 |
|
| 394 |
290 |
/// \brief Iterator for iterating on arcs connected the same nodes.
|
| 395 |
291 |
///
|
| 396 |
292 |
/// Iterator for iterating on arcs connected the same nodes. It is
|
| 397 |
293 |
/// higher level interface for the findArc() function. You can
|
| 398 |
294 |
/// use it the following way:
|
| 399 |
295 |
///\code
|
| 400 |
|
/// for (ConArcIt<Digraph> it(g, src, trg); it != INVALID; ++it) {
|
|
296 |
/// for (ConArcIt<Graph> it(g, src, trg); it != INVALID; ++it) {
|
| 401 |
297 |
/// ...
|
| 402 |
298 |
/// }
|
| 403 |
299 |
///\endcode
|
| 404 |
300 |
///
|
| 405 |
301 |
///\sa findArc()
|
| 406 |
302 |
///\sa ArcLookUp
|
| 407 |
303 |
///\sa AllArcLookUp
|
| 408 |
304 |
///\sa DynArcLookUp
|
| 409 |
305 |
///
|
| 410 |
306 |
/// \author Balazs Dezso
|
| 411 |
|
template <typename _Digraph>
|
| 412 |
|
class ConArcIt : public _Digraph::Arc {
|
|
307 |
template <typename _Graph>
|
|
308 |
class ConArcIt : public _Graph::Arc {
|
| 413 |
309 |
public:
|
| 414 |
310 |
|
| 415 |
|
typedef _Digraph Digraph;
|
| 416 |
|
typedef typename Digraph::Arc Parent;
|
| 417 |
|
|
| 418 |
|
typedef typename Digraph::Arc Arc;
|
| 419 |
|
typedef typename Digraph::Node Node;
|
|
311 |
typedef _Graph Graph;
|
|
312 |
typedef typename Graph::Arc Parent;
|
|
313 |
|
|
314 |
typedef typename Graph::Arc Arc;
|
|
315 |
typedef typename Graph::Node Node;
|
| 420 |
316 |
|
| 421 |
317 |
/// \brief Constructor.
|
| 422 |
318 |
///
|
| 423 |
319 |
/// Construct a new ConArcIt iterating on the arcs which
|
| 424 |
320 |
/// connects the \c u and \c v node.
|
| 425 |
|
ConArcIt(const Digraph& g, Node u, Node v) : digraph(g) {
|
| 426 |
|
Parent::operator=(findArc(digraph, u, v));
|
|
321 |
ConArcIt(const Graph& g, Node u, Node v) : _graph(g) {
|
|
322 |
Parent::operator=(findArc(_graph, u, v));
|
| 427 |
323 |
}
|
| 428 |
324 |
|
| 429 |
325 |
/// \brief Constructor.
|
| 430 |
326 |
///
|
| 431 |
327 |
/// Construct a new ConArcIt which continues the iterating from
|
| 432 |
328 |
/// the \c e arc.
|
| 433 |
|
ConArcIt(const Digraph& g, Arc e) : Parent(e), digraph(g) {}
|
|
329 |
ConArcIt(const Graph& g, Arc a) : Parent(a), _graph(g) {}
|
| 434 |
330 |
|
| 435 |
331 |
/// \brief Increment operator.
|
| 436 |
332 |
///
|
| 437 |
333 |
/// It increments the iterator and gives back the next arc.
|
| 438 |
334 |
ConArcIt& operator++() {
|
| 439 |
|
Parent::operator=(findArc(digraph, digraph.source(*this),
|
| 440 |
|
digraph.target(*this), *this));
|
|
335 |
Parent::operator=(findArc(_graph, _graph.source(*this),
|
|
336 |
_graph.target(*this), *this));
|
| 441 |
337 |
return *this;
|
| 442 |
338 |
}
|
| 443 |
339 |
private:
|
| 444 |
|
const Digraph& digraph;
|
|
340 |
const Graph& _graph;
|
| 445 |
341 |
};
|
| 446 |
342 |
|
| 447 |
|
namespace _digraph_utils_bits {
|
| 448 |
|
|
| 449 |
|
template <typename Digraph, typename Enable = void>
|
|
343 |
namespace _graph_utils_bits {
|
|
344 |
|
|
345 |
template <typename Graph, typename Enable = void>
|
| 450 |
346 |
struct FindEdgeSelector {
|
| 451 |
|
typedef typename Digraph::Node Node;
|
| 452 |
|
typedef typename Digraph::Edge Edge;
|
| 453 |
|
static Edge find(const Digraph &g, Node u, Node v, Edge e) {
|
|
347 |
typedef typename Graph::Node Node;
|
|
348 |
typedef typename Graph::Edge Edge;
|
|
349 |
static Edge find(const Graph &g, Node u, Node v, Edge e) {
|
| 454 |
350 |
bool b;
|
| 455 |
351 |
if (u != v) {
|
| 456 |
352 |
if (e == INVALID) {
|
| 457 |
353 |
g.firstInc(e, b, u);
|
| 458 |
354 |
} else {
|
| 459 |
355 |
b = g.source(e) == u;
|
| 460 |
356 |
g.nextInc(e, b);
|
| 461 |
357 |
}
|
| 462 |
358 |
while (e != INVALID && (b ? g.target(e) : g.source(e)) != v) {
|
| 463 |
359 |
g.nextInc(e, b);
|
| 464 |
360 |
}
|
| 465 |
361 |
} else {
|
| ... |
... |
@@ -468,141 +364,116 @@
|
| 468 |
364 |
} else {
|
| 469 |
365 |
b = true;
|
| 470 |
366 |
g.nextInc(e, b);
|
| 471 |
367 |
}
|
| 472 |
368 |
while (e != INVALID && (!b || g.target(e) != v)) {
|
| 473 |
369 |
g.nextInc(e, b);
|
| 474 |
370 |
}
|
| 475 |
371 |
}
|
| 476 |
372 |
return e;
|
| 477 |
373 |
}
|
| 478 |
374 |
};
|
| 479 |
375 |
|
| 480 |
|
template <typename Digraph>
|
|
376 |
template <typename Graph>
|
| 481 |
377 |
struct FindEdgeSelector<
|
| 482 |
|
Digraph,
|
| 483 |
|
typename enable_if<typename Digraph::FindArcTag, void>::type>
|
|
378 |
Graph,
|
|
379 |
typename enable_if<typename Graph::FindEdgeTag, void>::type>
|
| 484 |
380 |
{
|
| 485 |
|
typedef typename Digraph::Node Node;
|
| 486 |
|
typedef typename Digraph::Edge Edge;
|
| 487 |
|
static Edge find(const Digraph &g, Node u, Node v, Edge prev) {
|
|
381 |
typedef typename Graph::Node Node;
|
|
382 |
typedef typename Graph::Edge Edge;
|
|
383 |
static Edge find(const Graph &g, Node u, Node v, Edge prev) {
|
| 488 |
384 |
return g.findEdge(u, v, prev);
|
| 489 |
385 |
}
|
| 490 |
386 |
};
|
| 491 |
387 |
}
|
| 492 |
388 |
|
| 493 |
|
/// \brief Finds an edge between two nodes of a digraph.
|
|
389 |
/// \brief Finds an edge between two nodes of a graph.
|
| 494 |
390 |
///
|
| 495 |
|
/// Finds an edge from node \c u to node \c v in digraph \c g.
|
| 496 |
|
/// If the node \c u and node \c v is equal then each loop arc
|
| 497 |
|
/// will be enumerated.
|
|
391 |
/// Finds an edge from node \c u to node \c v in graph \c g.
|
|
392 |
/// If the node \c u and node \c v is equal then each loop edge
|
|
393 |
/// will be enumerated once.
|
| 498 |
394 |
///
|
| 499 |
395 |
/// If \c prev is \ref INVALID (this is the default value), then
|
| 500 |
396 |
/// it finds the first arc from \c u to \c v. Otherwise it looks for
|
| 501 |
397 |
/// the next arc from \c u to \c v after \c prev.
|
| 502 |
398 |
/// \return The found arc or \ref INVALID if there is no such an arc.
|
| 503 |
399 |
///
|
| 504 |
400 |
/// Thus you can iterate through each arc from \c u to \c v as it follows.
|
| 505 |
401 |
///\code
|
| 506 |
402 |
/// for(Edge e = findEdge(g,u,v); e != INVALID;
|
| 507 |
403 |
/// e = findEdge(g,u,v,e)) {
|
| 508 |
404 |
/// ...
|
| 509 |
405 |
/// }
|
| 510 |
406 |
///\endcode
|
| 511 |
407 |
///
|
| 512 |
408 |
///\sa ConArcIt
|
| 513 |
409 |
|
| 514 |
|
template <typename Digraph>
|
| 515 |
|
inline typename Digraph::Edge
|
| 516 |
|
findEdge(const Digraph &g, typename Digraph::Node u, typename Digraph::Node v,
|
| 517 |
|
typename Digraph::Edge p = INVALID) {
|
| 518 |
|
return _digraph_utils_bits::FindEdgeSelector<Digraph>::find(g, u, v, p);
|
|
410 |
template <typename Graph>
|
|
411 |
inline typename Graph::Edge
|
|
412 |
findEdge(const Graph &g, typename Graph::Node u, typename Graph::Node v,
|
|
413 |
typename Graph::Edge p = INVALID) {
|
|
414 |
return _graph_utils_bits::FindEdgeSelector<Graph>::find(g, u, v, p);
|
| 519 |
415 |
}
|
| 520 |
416 |
|
| 521 |
417 |
/// \brief Iterator for iterating on edges connected the same nodes.
|
| 522 |
418 |
///
|
| 523 |
419 |
/// Iterator for iterating on edges connected the same nodes. It is
|
| 524 |
420 |
/// higher level interface for the findEdge() function. You can
|
| 525 |
421 |
/// use it the following way:
|
| 526 |
422 |
///\code
|
| 527 |
|
/// for (ConEdgeIt<Digraph> it(g, src, trg); it != INVALID; ++it) {
|
|
423 |
/// for (ConEdgeIt<Graph> it(g, src, trg); it != INVALID; ++it) {
|
| 528 |
424 |
/// ...
|
| 529 |
425 |
/// }
|
| 530 |
426 |
///\endcode
|
| 531 |
427 |
///
|
| 532 |
428 |
///\sa findEdge()
|
| 533 |
429 |
///
|
| 534 |
430 |
/// \author Balazs Dezso
|
| 535 |
|
template <typename _Digraph>
|
| 536 |
|
class ConEdgeIt : public _Digraph::Edge {
|
|
431 |
template <typename _Graph>
|
|
432 |
class ConEdgeIt : public _Graph::Edge {
|
| 537 |
433 |
public:
|
| 538 |
434 |
|
| 539 |
|
typedef _Digraph Digraph;
|
| 540 |
|
typedef typename Digraph::Edge Parent;
|
| 541 |
|
|
| 542 |
|
typedef typename Digraph::Edge Edge;
|
| 543 |
|
typedef typename Digraph::Node Node;
|
|
435 |
typedef _Graph Graph;
|
|
436 |
typedef typename Graph::Edge Parent;
|
|
437 |
|
|
438 |
typedef typename Graph::Edge Edge;
|
|
439 |
typedef typename Graph::Node Node;
|
| 544 |
440 |
|
| 545 |
441 |
/// \brief Constructor.
|
| 546 |
442 |
///
|
| 547 |
|
/// Construct a new ConEdgeIt iterating on the arcs which
|
|
443 |
/// Construct a new ConEdgeIt iterating on the edges which
|
| 548 |
444 |
/// connects the \c u and \c v node.
|
| 549 |
|
ConEdgeIt(const Digraph& g, Node u, Node v) : digraph(g) {
|
| 550 |
|
Parent::operator=(findEdge(digraph, u, v));
|
|
445 |
ConEdgeIt(const Graph& g, Node u, Node v) : _graph(g) {
|
|
446 |
Parent::operator=(findEdge(_graph, u, v));
|
| 551 |
447 |
}
|
| 552 |
448 |
|
| 553 |
449 |
/// \brief Constructor.
|
| 554 |
450 |
///
|
| 555 |
451 |
/// Construct a new ConEdgeIt which continues the iterating from
|
| 556 |
|
/// the \c e arc.
|
| 557 |
|
ConEdgeIt(const Digraph& g, Edge e) : Parent(e), digraph(g) {}
|
|
452 |
/// the \c e edge.
|
|
453 |
ConEdgeIt(const Graph& g, Edge e) : Parent(e), _graph(g) {}
|
| 558 |
454 |
|
| 559 |
455 |
/// \brief Increment operator.
|
| 560 |
456 |
///
|
| 561 |
|
/// It increments the iterator and gives back the next arc.
|
|
457 |
/// It increments the iterator and gives back the next edge.
|
| 562 |
458 |
ConEdgeIt& operator++() {
|
| 563 |
|
Parent::operator=(findEdge(digraph, digraph.source(*this),
|
| 564 |
|
digraph.target(*this), *this));
|
|
459 |
Parent::operator=(findEdge(_graph, _graph.source(*this),
|
|
460 |
_graph.target(*this), *this));
|
| 565 |
461 |
return *this;
|
| 566 |
462 |
}
|
| 567 |
463 |
private:
|
| 568 |
|
const Digraph& digraph;
|
|
464 |
const Graph& _graph;
|
| 569 |
465 |
};
|
| 570 |
466 |
|
| 571 |
|
/// \brief Copy a map.
|
| 572 |
|
///
|
| 573 |
|
/// This function copies the \c from map to the \c to map. It uses the
|
| 574 |
|
/// given iterator to iterate on the data structure and it uses the \c ref
|
| 575 |
|
/// mapping to convert the from's keys to the to's keys.
|
| 576 |
|
template <typename To, typename From,
|
| 577 |
|
typename ItemIt, typename Ref>
|
| 578 |
|
void copyMap(To& to, const From& from,
|
| 579 |
|
ItemIt it, const Ref& ref) {
|
| 580 |
|
for (; it != INVALID; ++it) {
|
| 581 |
|
to[ref[it]] = from[it];
|
| 582 |
|
}
|
| 583 |
|
}
|
| 584 |
|
|
| 585 |
|
/// \brief Copy the from map to the to map.
|
| 586 |
|
///
|
| 587 |
|
/// Copy the \c from map to the \c to map. It uses the given iterator
|
| 588 |
|
/// to iterate on the data structure.
|
| 589 |
|
template <typename To, typename From, typename ItemIt>
|
| 590 |
|
void copyMap(To& to, const From& from, ItemIt it) {
|
| 591 |
|
for (; it != INVALID; ++it) {
|
| 592 |
|
to[it] = from[it];
|
| 593 |
|
}
|
| 594 |
|
}
|
| 595 |
|
|
| 596 |
|
namespace _digraph_utils_bits {
|
|
467 |
namespace _graph_utils_bits {
|
| 597 |
468 |
|
| 598 |
469 |
template <typename Digraph, typename Item, typename RefMap>
|
| 599 |
470 |
class MapCopyBase {
|
| 600 |
471 |
public:
|
| 601 |
472 |
virtual void copy(const Digraph& from, const RefMap& refMap) = 0;
|
| 602 |
473 |
|
| 603 |
474 |
virtual ~MapCopyBase() {}
|
| 604 |
475 |
};
|
| 605 |
476 |
|
| 606 |
477 |
template <typename Digraph, typename Item, typename RefMap,
|
| 607 |
478 |
typename ToMap, typename FromMap>
|
| 608 |
479 |
class MapCopy : public MapCopyBase<Digraph, Item, RefMap> {
|
| ... |
... |
@@ -718,981 +589,645 @@
|
| 718 |
589 |
template <typename Graph>
|
| 719 |
590 |
struct GraphCopySelector<
|
| 720 |
591 |
Graph,
|
| 721 |
592 |
typename enable_if<typename Graph::BuildTag, void>::type>
|
| 722 |
593 |
{
|
| 723 |
594 |
template <typename From, typename NodeRefMap, typename EdgeRefMap>
|
| 724 |
595 |
static void copy(Graph &to, const From& from,
|
| 725 |
596 |
NodeRefMap& nodeRefMap, EdgeRefMap& edgeRefMap) {
|
| 726 |
597 |
to.build(from, nodeRefMap, edgeRefMap);
|
| 727 |
598 |
}
|
| 728 |
599 |
};
|
| 729 |
600 |
|
| 730 |
|
template <typename BpGraph, typename Enable = void>
|
| 731 |
|
struct BpGraphCopySelector {
|
| 732 |
|
template <typename From, typename RedRefMap,
|
| 733 |
|
typename BlueRefMap, typename EdgeRefMap>
|
| 734 |
|
static void copy(BpGraph &to, const From& from,
|
| 735 |
|
RedRefMap& redRefMap, BlueRefMap& blueRefMap,
|
| 736 |
|
EdgeRefMap& edgeRefMap) {
|
| 737 |
|
for (typename From::RedIt it(from); it != INVALID; ++it) {
|
| 738 |
|
redRefMap[it] = to.addRed();
|
| 739 |
|
}
|
| 740 |
|
for (typename From::BlueIt it(from); it != INVALID; ++it) {
|
| 741 |
|
blueRefMap[it] = to.addBlue();
|
| 742 |
|
}
|
| 743 |
|
for (typename From::EdgeIt it(from); it != INVALID; ++it) {
|
| 744 |
|
edgeRefMap[it] = to.addArc(redRefMap[from.red(it)],
|
| 745 |
|
blueRefMap[from.blue(it)]);
|
| 746 |
|
}
|
| 747 |
|
}
|
| 748 |
|
};
|
| 749 |
|
|
| 750 |
|
template <typename BpGraph>
|
| 751 |
|
struct BpGraphCopySelector<
|
| 752 |
|
BpGraph,
|
| 753 |
|
typename enable_if<typename BpGraph::BuildTag, void>::type>
|
| 754 |
|
{
|
| 755 |
|
template <typename From, typename RedRefMap,
|
| 756 |
|
typename BlueRefMap, typename EdgeRefMap>
|
| 757 |
|
static void copy(BpGraph &to, const From& from,
|
| 758 |
|
RedRefMap& redRefMap, BlueRefMap& blueRefMap,
|
| 759 |
|
EdgeRefMap& edgeRefMap) {
|
| 760 |
|
to.build(from, redRefMap, blueRefMap, edgeRefMap);
|
| 761 |
|
}
|
| 762 |
|
};
|
| 763 |
|
|
| 764 |
|
|
| 765 |
601 |
}
|
| 766 |
602 |
|
| 767 |
603 |
/// \brief Class to copy a digraph.
|
| 768 |
604 |
///
|
| 769 |
605 |
/// Class to copy a digraph to another digraph (duplicate a digraph). The
|
| 770 |
606 |
/// simplest way of using it is through the \c copyDigraph() function.
|
|
607 |
///
|
|
608 |
/// This class not just make a copy of a graph, but it can create
|
|
609 |
/// references and cross references between the nodes and arcs of
|
|
610 |
/// the two graphs, it can copy maps for use with the newly created
|
|
611 |
/// graph and copy nodes and arcs.
|
|
612 |
///
|
|
613 |
/// To make a copy from a graph, first an instance of DigraphCopy
|
|
614 |
/// should be created, then the data belongs to the graph should
|
|
615 |
/// assigned to copy. In the end, the \c run() member should be
|
|
616 |
/// called.
|
|
617 |
///
|
|
618 |
/// The next code copies a graph with several data:
|
|
619 |
///\code
|
|
620 |
/// DigraphCopy<NewGraph, OrigGraph> dc(new_graph, orig_graph);
|
|
621 |
/// // create a reference for the nodes
|
|
622 |
/// OrigGraph::NodeMap<NewGraph::Node> nr(orig_graph);
|
|
623 |
/// dc.nodeRef(nr);
|
|
624 |
/// // create a cross reference (inverse) for the arcs
|
|
625 |
/// NewGraph::ArcMap<OrigGraph::Arc> acr(new_graph);
|
|
626 |
/// dc.arcCrossRef(acr);
|
|
627 |
/// // copy an arc map
|
|
628 |
/// OrigGraph::ArcMap<double> oamap(orig_graph);
|
|
629 |
/// NewGraph::ArcMap<double> namap(new_graph);
|
|
630 |
/// dc.arcMap(namap, oamap);
|
|
631 |
/// // copy a node
|
|
632 |
/// OrigGraph::Node on;
|
|
633 |
/// NewGraph::Node nn;
|
|
634 |
/// dc.node(nn, on);
|
|
635 |
/// // Executions of copy
|
|
636 |
/// dc.run();
|
|
637 |
///\endcode
|
| 771 |
638 |
template <typename To, typename From>
|
| 772 |
639 |
class DigraphCopy {
|
| 773 |
640 |
private:
|
| 774 |
641 |
|
| 775 |
642 |
typedef typename From::Node Node;
|
| 776 |
643 |
typedef typename From::NodeIt NodeIt;
|
| 777 |
644 |
typedef typename From::Arc Arc;
|
| 778 |
645 |
typedef typename From::ArcIt ArcIt;
|
| 779 |
646 |
|
| 780 |
647 |
typedef typename To::Node TNode;
|
| 781 |
648 |
typedef typename To::Arc TArc;
|
| 782 |
649 |
|
| 783 |
650 |
typedef typename From::template NodeMap<TNode> NodeRefMap;
|
| 784 |
651 |
typedef typename From::template ArcMap<TArc> ArcRefMap;
|
| 785 |
652 |
|
| 786 |
653 |
|
| 787 |
654 |
public:
|
| 788 |
655 |
|
| 789 |
656 |
|
| 790 |
657 |
/// \brief Constructor for the DigraphCopy.
|
| 791 |
658 |
///
|
| 792 |
659 |
/// It copies the content of the \c _from digraph into the
|
| 793 |
660 |
/// \c _to digraph.
|
| 794 |
|
DigraphCopy(To& _to, const From& _from)
|
| 795 |
|
: from(_from), to(_to) {}
|
|
661 |
DigraphCopy(To& to, const From& from)
|
|
662 |
: _from(from), _to(to) {}
|
| 796 |
663 |
|
| 797 |
664 |
/// \brief Destructor of the DigraphCopy
|
| 798 |
665 |
///
|
| 799 |
666 |
/// Destructor of the DigraphCopy
|
| 800 |
667 |
~DigraphCopy() {
|
| 801 |
|
for (int i = 0; i < int(nodeMapCopies.size()); ++i) {
|
| 802 |
|
delete nodeMapCopies[i];
|
|
668 |
for (int i = 0; i < int(_node_maps.size()); ++i) {
|
|
669 |
delete _node_maps[i];
|
| 803 |
670 |
}
|
| 804 |
|
for (int i = 0; i < int(arcMapCopies.size()); ++i) {
|
| 805 |
|
delete arcMapCopies[i];
|
|
671 |
for (int i = 0; i < int(_arc_maps.size()); ++i) {
|
|
672 |
delete _arc_maps[i];
|
| 806 |
673 |
}
|
| 807 |
674 |
|
| 808 |
675 |
}
|
| 809 |
676 |
|
| 810 |
677 |
/// \brief Copies the node references into the given map.
|
| 811 |
678 |
///
|
| 812 |
|
/// Copies the node references into the given map.
|
|
679 |
/// Copies the node references into the given map. The parameter
|
|
680 |
/// should be a map, which key type is the Node type of the source
|
|
681 |
/// graph, while the value type is the Node type of the
|
|
682 |
/// destination graph.
|
| 813 |
683 |
template <typename NodeRef>
|
| 814 |
684 |
DigraphCopy& nodeRef(NodeRef& map) {
|
| 815 |
|
nodeMapCopies.push_back(new _digraph_utils_bits::RefCopy<From, Node,
|
|
685 |
_node_maps.push_back(new _graph_utils_bits::RefCopy<From, Node,
|
| 816 |
686 |
NodeRefMap, NodeRef>(map));
|
| 817 |
687 |
return *this;
|
| 818 |
688 |
}
|
| 819 |
689 |
|
| 820 |
690 |
/// \brief Copies the node cross references into the given map.
|
| 821 |
691 |
///
|
| 822 |
692 |
/// Copies the node cross references (reverse references) into
|
| 823 |
|
/// the given map.
|
|
693 |
/// the given map. The parameter should be a map, which key type
|
|
694 |
/// is the Node type of the destination graph, while the value type is
|
|
695 |
/// the Node type of the source graph.
|
| 824 |
696 |
template <typename NodeCrossRef>
|
| 825 |
697 |
DigraphCopy& nodeCrossRef(NodeCrossRef& map) {
|
| 826 |
|
nodeMapCopies.push_back(new _digraph_utils_bits::CrossRefCopy<From, Node,
|
|
698 |
_node_maps.push_back(new _graph_utils_bits::CrossRefCopy<From, Node,
|
| 827 |
699 |
NodeRefMap, NodeCrossRef>(map));
|
| 828 |
700 |
return *this;
|
| 829 |
701 |
}
|
| 830 |
702 |
|
| 831 |
703 |
/// \brief Make copy of the given map.
|
| 832 |
704 |
///
|
| 833 |
705 |
/// Makes copy of the given map for the newly created digraph.
|
| 834 |
|
/// The new map's key type is the to digraph's node type,
|
| 835 |
|
/// and the copied map's key type is the from digraph's node
|
| 836 |
|
/// type.
|
|
706 |
/// The new map's key type is the destination graph's node type,
|
|
707 |
/// and the copied map's key type is the source graph's node type.
|
| 837 |
708 |
template <typename ToMap, typename FromMap>
|
| 838 |
709 |
DigraphCopy& nodeMap(ToMap& tmap, const FromMap& map) {
|
| 839 |
|
nodeMapCopies.push_back(new _digraph_utils_bits::MapCopy<From, Node,
|
|
710 |
_node_maps.push_back(new _graph_utils_bits::MapCopy<From, Node,
|
| 840 |
711 |
NodeRefMap, ToMap, FromMap>(tmap, map));
|
| 841 |
712 |
return *this;
|
| 842 |
713 |
}
|
| 843 |
714 |
|
| 844 |
715 |
/// \brief Make a copy of the given node.
|
| 845 |
716 |
///
|
| 846 |
717 |
/// Make a copy of the given node.
|
| 847 |
718 |
DigraphCopy& node(TNode& tnode, const Node& snode) {
|
| 848 |
|
nodeMapCopies.push_back(new _digraph_utils_bits::ItemCopy<From, Node,
|
|
719 |
_node_maps.push_back(new _graph_utils_bits::ItemCopy<From, Node,
|
| 849 |
720 |
NodeRefMap, TNode>(tnode, snode));
|
| 850 |
721 |
return *this;
|
| 851 |
722 |
}
|
| 852 |
723 |
|
| 853 |
724 |
/// \brief Copies the arc references into the given map.
|
| 854 |
725 |
///
|
| 855 |
726 |
/// Copies the arc references into the given map.
|
| 856 |
727 |
template <typename ArcRef>
|
| 857 |
728 |
DigraphCopy& arcRef(ArcRef& map) {
|
| 858 |
|
arcMapCopies.push_back(new _digraph_utils_bits::RefCopy<From, Arc,
|
|
729 |
_arc_maps.push_back(new _graph_utils_bits::RefCopy<From, Arc,
|
| 859 |
730 |
ArcRefMap, ArcRef>(map));
|
| 860 |
731 |
return *this;
|
| 861 |
732 |
}
|
| 862 |
733 |
|
| 863 |
734 |
/// \brief Copies the arc cross references into the given map.
|
| 864 |
735 |
///
|
| 865 |
736 |
/// Copies the arc cross references (reverse references) into
|
| 866 |
737 |
/// the given map.
|
| 867 |
738 |
template <typename ArcCrossRef>
|
| 868 |
739 |
DigraphCopy& arcCrossRef(ArcCrossRef& map) {
|
| 869 |
|
arcMapCopies.push_back(new _digraph_utils_bits::CrossRefCopy<From, Arc,
|
|
740 |
_arc_maps.push_back(new _graph_utils_bits::CrossRefCopy<From, Arc,
|
| 870 |
741 |
ArcRefMap, ArcCrossRef>(map));
|
| 871 |
742 |
return *this;
|
| 872 |
743 |
}
|
| 873 |
744 |
|
| 874 |
745 |
/// \brief Make copy of the given map.
|
| 875 |
746 |
///
|
| 876 |
747 |
/// Makes copy of the given map for the newly created digraph.
|
| 877 |
748 |
/// The new map's key type is the to digraph's arc type,
|
| 878 |
749 |
/// and the copied map's key type is the from digraph's arc
|
| 879 |
750 |
/// type.
|
| 880 |
751 |
template <typename ToMap, typename FromMap>
|
| 881 |
752 |
DigraphCopy& arcMap(ToMap& tmap, const FromMap& map) {
|
| 882 |
|
arcMapCopies.push_back(new _digraph_utils_bits::MapCopy<From, Arc,
|
|
753 |
_arc_maps.push_back(new _graph_utils_bits::MapCopy<From, Arc,
|
| 883 |
754 |
ArcRefMap, ToMap, FromMap>(tmap, map));
|
| 884 |
755 |
return *this;
|
| 885 |
756 |
}
|
| 886 |
757 |
|
| 887 |
758 |
/// \brief Make a copy of the given arc.
|
| 888 |
759 |
///
|
| 889 |
760 |
/// Make a copy of the given arc.
|
| 890 |
761 |
DigraphCopy& arc(TArc& tarc, const Arc& sarc) {
|
| 891 |
|
arcMapCopies.push_back(new _digraph_utils_bits::ItemCopy<From, Arc,
|
|
762 |
_arc_maps.push_back(new _graph_utils_bits::ItemCopy<From, Arc,
|
| 892 |
763 |
ArcRefMap, TArc>(tarc, sarc));
|
| 893 |
764 |
return *this;
|
| 894 |
765 |
}
|
| 895 |
766 |
|
| 896 |
767 |
/// \brief Executes the copies.
|
| 897 |
768 |
///
|
| 898 |
769 |
/// Executes the copies.
|
| 899 |
770 |
void run() {
|
| 900 |
|
NodeRefMap nodeRefMap(from);
|
| 901 |
|
ArcRefMap arcRefMap(from);
|
| 902 |
|
_digraph_utils_bits::DigraphCopySelector<To>::
|
| 903 |
|
copy(to, from, nodeRefMap, arcRefMap);
|
| 904 |
|
for (int i = 0; i < int(nodeMapCopies.size()); ++i) {
|
| 905 |
|
nodeMapCopies[i]->copy(from, nodeRefMap);
|
|
771 |
NodeRefMap nodeRefMap(_from);
|
|
772 |
ArcRefMap arcRefMap(_from);
|
|
773 |
_graph_utils_bits::DigraphCopySelector<To>::
|
|
774 |
copy(_to, _from, nodeRefMap, arcRefMap);
|
|
775 |
for (int i = 0; i < int(_node_maps.size()); ++i) {
|
|
776 |
_node_maps[i]->copy(_from, nodeRefMap);
|
| 906 |
777 |
}
|
| 907 |
|
for (int i = 0; i < int(arcMapCopies.size()); ++i) {
|
| 908 |
|
arcMapCopies[i]->copy(from, arcRefMap);
|
|
778 |
for (int i = 0; i < int(_arc_maps.size()); ++i) {
|
|
779 |
_arc_maps[i]->copy(_from, arcRefMap);
|
| 909 |
780 |
}
|
| 910 |
781 |
}
|
| 911 |
782 |
|
| 912 |
783 |
protected:
|
| 913 |
784 |
|
| 914 |
785 |
|
| 915 |
|
const From& from;
|
| 916 |
|
To& to;
|
| 917 |
|
|
| 918 |
|
std::vector<_digraph_utils_bits::MapCopyBase<From, Node, NodeRefMap>* >
|
| 919 |
|
nodeMapCopies;
|
| 920 |
|
|
| 921 |
|
std::vector<_digraph_utils_bits::MapCopyBase<From, Arc, ArcRefMap>* >
|
| 922 |
|
arcMapCopies;
|
|
786 |
const From& _from;
|
|
787 |
To& _to;
|
|
788 |
|
|
789 |
std::vector<_graph_utils_bits::MapCopyBase<From, Node, NodeRefMap>* >
|
|
790 |
_node_maps;
|
|
791 |
|
|
792 |
std::vector<_graph_utils_bits::MapCopyBase<From, Arc, ArcRefMap>* >
|
|
793 |
_arc_maps;
|
| 923 |
794 |
|
| 924 |
795 |
};
|
| 925 |
796 |
|
| 926 |
797 |
/// \brief Copy a digraph to another digraph.
|
| 927 |
798 |
///
|
| 928 |
|
/// Copy a digraph to another digraph.
|
| 929 |
|
/// The usage of the function:
|
| 930 |
|
///
|
|
799 |
/// Copy a digraph to another digraph. The complete usage of the
|
|
800 |
/// function is detailed in the DigraphCopy class, but a short
|
|
801 |
/// example shows a basic work:
|
| 931 |
802 |
///\code
|
| 932 |
803 |
/// copyDigraph(trg, src).nodeRef(nr).arcCrossRef(ecr).run();
|
| 933 |
804 |
///\endcode
|
| 934 |
805 |
///
|
| 935 |
806 |
/// After the copy the \c nr map will contain the mapping from the
|
| 936 |
807 |
/// nodes of the \c from digraph to the nodes of the \c to digraph and
|
| 937 |
808 |
/// \c ecr will contain the mapping from the arcs of the \c to digraph
|
| 938 |
809 |
/// to the arcs of the \c from digraph.
|
| 939 |
810 |
///
|
| 940 |
811 |
/// \see DigraphCopy
|
| 941 |
812 |
template <typename To, typename From>
|
| 942 |
813 |
DigraphCopy<To, From> copyDigraph(To& to, const From& from) {
|
| 943 |
814 |
return DigraphCopy<To, From>(to, from);
|
| 944 |
815 |
}
|
| 945 |
816 |
|
| 946 |
|
/// \brief Class to copy an graph.
|
|
817 |
/// \brief Class to copy a graph.
|
| 947 |
818 |
///
|
| 948 |
|
/// Class to copy an graph to another digraph (duplicate a digraph).
|
| 949 |
|
/// The simplest way of using it is through the \c copyGraph() function.
|
|
819 |
/// Class to copy a graph to another graph (duplicate a graph). The
|
|
820 |
/// simplest way of using it is through the \c copyGraph() function.
|
|
821 |
///
|
|
822 |
/// This class not just make a copy of a graph, but it can create
|
|
823 |
/// references and cross references between the nodes, edges and arcs of
|
|
824 |
/// the two graphs, it can copy maps for use with the newly created
|
|
825 |
/// graph and copy nodes, edges and arcs.
|
|
826 |
///
|
|
827 |
/// To make a copy from a graph, first an instance of GraphCopy
|
|
828 |
/// should be created, then the data belongs to the graph should
|
|
829 |
/// assigned to copy. In the end, the \c run() member should be
|
|
830 |
/// called.
|
|
831 |
///
|
|
832 |
/// The next code copies a graph with several data:
|
|
833 |
///\code
|
|
834 |
/// GraphCopy<NewGraph, OrigGraph> dc(new_graph, orig_graph);
|
|
835 |
/// // create a reference for the nodes
|
|
836 |
/// OrigGraph::NodeMap<NewGraph::Node> nr(orig_graph);
|
|
837 |
/// dc.nodeRef(nr);
|
|
838 |
/// // create a cross reference (inverse) for the edges
|
|
839 |
/// NewGraph::EdgeMap<OrigGraph::Arc> ecr(new_graph);
|
|
840 |
/// dc.edgeCrossRef(ecr);
|
|
841 |
/// // copy an arc map
|
|
842 |
/// OrigGraph::ArcMap<double> oamap(orig_graph);
|
|
843 |
/// NewGraph::ArcMap<double> namap(new_graph);
|
|
844 |
/// dc.arcMap(namap, oamap);
|
|
845 |
/// // copy a node
|
|
846 |
/// OrigGraph::Node on;
|
|
847 |
/// NewGraph::Node nn;
|
|
848 |
/// dc.node(nn, on);
|
|
849 |
/// // Executions of copy
|
|
850 |
/// dc.run();
|
|
851 |
///\endcode
|
| 950 |
852 |
template <typename To, typename From>
|
| 951 |
853 |
class GraphCopy {
|
| 952 |
854 |
private:
|
| 953 |
855 |
|
| 954 |
856 |
typedef typename From::Node Node;
|
| 955 |
857 |
typedef typename From::NodeIt NodeIt;
|
| 956 |
858 |
typedef typename From::Arc Arc;
|
| 957 |
859 |
typedef typename From::ArcIt ArcIt;
|
| 958 |
860 |
typedef typename From::Edge Edge;
|
| 959 |
861 |
typedef typename From::EdgeIt EdgeIt;
|
| 960 |
862 |
|
| 961 |
863 |
typedef typename To::Node TNode;
|
| 962 |
864 |
typedef typename To::Arc TArc;
|
| 963 |
865 |
typedef typename To::Edge TEdge;
|
| 964 |
866 |
|
| 965 |
867 |
typedef typename From::template NodeMap<TNode> NodeRefMap;
|
| 966 |
868 |
typedef typename From::template EdgeMap<TEdge> EdgeRefMap;
|
| 967 |
869 |
|
| 968 |
870 |
struct ArcRefMap {
|
| 969 |
|
ArcRefMap(const To& _to, const From& _from,
|
| 970 |
|
const EdgeRefMap& _edge_ref, const NodeRefMap& _node_ref)
|
| 971 |
|
: to(_to), from(_from),
|
| 972 |
|
edge_ref(_edge_ref), node_ref(_node_ref) {}
|
|
871 |
ArcRefMap(const To& to, const From& from,
|
|
872 |
const EdgeRefMap& edge_ref, const NodeRefMap& node_ref)
|
|
873 |
: _to(to), _from(from),
|
|
874 |
_edge_ref(edge_ref), _node_ref(node_ref) {}
|
| 973 |
875 |
|
| 974 |
876 |
typedef typename From::Arc Key;
|
| 975 |
877 |
typedef typename To::Arc Value;
|
| 976 |
878 |
|
| 977 |
879 |
Value operator[](const Key& key) const {
|
| 978 |
880 |
bool forward =
|
| 979 |
|
(from.direction(key) ==
|
| 980 |
|
(node_ref[from.source(static_cast<const Edge&>(key))] ==
|
| 981 |
|
to.source(edge_ref[static_cast<const Edge&>(key)])));
|
| 982 |
|
return to.direct(edge_ref[key], forward);
|
|
881 |
(_from.direction(key) ==
|
|
882 |
(_node_ref[_from.source(key)] == _to.source(_edge_ref[key])));
|
|
883 |
return _to.direct(_edge_ref[key], forward);
|
| 983 |
884 |
}
|
| 984 |
885 |
|
| 985 |
|
const To& to;
|
| 986 |
|
const From& from;
|
| 987 |
|
const EdgeRefMap& edge_ref;
|
| 988 |
|
const NodeRefMap& node_ref;
|
|
886 |
const To& _to;
|
|
887 |
const From& _from;
|
|
888 |
const EdgeRefMap& _edge_ref;
|
|
889 |
const NodeRefMap& _node_ref;
|
| 989 |
890 |
};
|
| 990 |
891 |
|
| 991 |
892 |
|
| 992 |
893 |
public:
|
| 993 |
894 |
|
| 994 |
895 |
|
| 995 |
|
/// \brief Constructor for the DigraphCopy.
|
|
896 |
/// \brief Constructor for the GraphCopy.
|
| 996 |
897 |
///
|
| 997 |
|
/// It copies the content of the \c _from digraph into the
|
| 998 |
|
/// \c _to digraph.
|
| 999 |
|
GraphCopy(To& _to, const From& _from)
|
| 1000 |
|
: from(_from), to(_to) {}
|
| 1001 |
|
|
| 1002 |
|
/// \brief Destructor of the DigraphCopy
|
|
898 |
/// It copies the content of the \c _from graph into the
|
|
899 |
/// \c _to graph.
|
|
900 |
GraphCopy(To& to, const From& from)
|
|
901 |
: _from(from), _to(to) {}
|
|
902 |
|
|
903 |
/// \brief Destructor of the GraphCopy
|
| 1003 |
904 |
///
|
| 1004 |
|
/// Destructor of the DigraphCopy
|
|
905 |
/// Destructor of the GraphCopy
|
| 1005 |
906 |
~GraphCopy() {
|
| 1006 |
|
for (int i = 0; i < int(nodeMapCopies.size()); ++i) {
|
| 1007 |
|
delete nodeMapCopies[i];
|
|
907 |
for (int i = 0; i < int(_node_maps.size()); ++i) {
|
|
908 |
delete _node_maps[i];
|
| 1008 |
909 |
}
|
| 1009 |
|
for (int i = 0; i < int(arcMapCopies.size()); ++i) {
|
| 1010 |
|
delete arcMapCopies[i];
|
|
910 |
for (int i = 0; i < int(_arc_maps.size()); ++i) {
|
|
911 |
delete _arc_maps[i];
|
| 1011 |
912 |
}
|
| 1012 |
|
for (int i = 0; i < int(edgeMapCopies.size()); ++i) {
|
| 1013 |
|
delete edgeMapCopies[i];
|
|
913 |
for (int i = 0; i < int(_edge_maps.size()); ++i) {
|
|
914 |
delete _edge_maps[i];
|
| 1014 |
915 |
}
|
| 1015 |
916 |
|
| 1016 |
917 |
}
|
| 1017 |
918 |
|
| 1018 |
919 |
/// \brief Copies the node references into the given map.
|
| 1019 |
920 |
///
|
| 1020 |
921 |
/// Copies the node references into the given map.
|
| 1021 |
922 |
template <typename NodeRef>
|
| 1022 |
923 |
GraphCopy& nodeRef(NodeRef& map) {
|
| 1023 |
|
nodeMapCopies.push_back(new _digraph_utils_bits::RefCopy<From, Node,
|
|
924 |
_node_maps.push_back(new _graph_utils_bits::RefCopy<From, Node,
|
| 1024 |
925 |
NodeRefMap, NodeRef>(map));
|
| 1025 |
926 |
return *this;
|
| 1026 |
927 |
}
|
| 1027 |
928 |
|
| 1028 |
929 |
/// \brief Copies the node cross references into the given map.
|
| 1029 |
930 |
///
|
| 1030 |
931 |
/// Copies the node cross references (reverse references) into
|
| 1031 |
932 |
/// the given map.
|
| 1032 |
933 |
template <typename NodeCrossRef>
|
| 1033 |
934 |
GraphCopy& nodeCrossRef(NodeCrossRef& map) {
|
| 1034 |
|
nodeMapCopies.push_back(new _digraph_utils_bits::CrossRefCopy<From, Node,
|
|
935 |
_node_maps.push_back(new _graph_utils_bits::CrossRefCopy<From, Node,
|
| 1035 |
936 |
NodeRefMap, NodeCrossRef>(map));
|
| 1036 |
937 |
return *this;
|
| 1037 |
938 |
}
|
| 1038 |
939 |
|
| 1039 |
940 |
/// \brief Make copy of the given map.
|
| 1040 |
941 |
///
|
| 1041 |
|
/// Makes copy of the given map for the newly created digraph.
|
| 1042 |
|
/// The new map's key type is the to digraph's node type,
|
| 1043 |
|
/// and the copied map's key type is the from digraph's node
|
|
942 |
/// Makes copy of the given map for the newly created graph.
|
|
943 |
/// The new map's key type is the to graph's node type,
|
|
944 |
/// and the copied map's key type is the from graph's node
|
| 1044 |
945 |
/// type.
|
| 1045 |
946 |
template <typename ToMap, typename FromMap>
|
| 1046 |
947 |
GraphCopy& nodeMap(ToMap& tmap, const FromMap& map) {
|
| 1047 |
|
nodeMapCopies.push_back(new _digraph_utils_bits::MapCopy<From, Node,
|
|
948 |
_node_maps.push_back(new _graph_utils_bits::MapCopy<From, Node,
|
| 1048 |
949 |
NodeRefMap, ToMap, FromMap>(tmap, map));
|
| 1049 |
950 |
return *this;
|
| 1050 |
951 |
}
|
| 1051 |
952 |
|
| 1052 |
953 |
/// \brief Make a copy of the given node.
|
| 1053 |
954 |
///
|
| 1054 |
955 |
/// Make a copy of the given node.
|
| 1055 |
956 |
GraphCopy& node(TNode& tnode, const Node& snode) {
|
| 1056 |
|
nodeMapCopies.push_back(new _digraph_utils_bits::ItemCopy<From, Node,
|
|
957 |
_node_maps.push_back(new _graph_utils_bits::ItemCopy<From, Node,
|
| 1057 |
958 |
NodeRefMap, TNode>(tnode, snode));
|
| 1058 |
959 |
return *this;
|
| 1059 |
960 |
}
|
| 1060 |
961 |
|
| 1061 |
962 |
/// \brief Copies the arc references into the given map.
|
| 1062 |
963 |
///
|
| 1063 |
964 |
/// Copies the arc references into the given map.
|
| 1064 |
965 |
template <typename ArcRef>
|
| 1065 |
966 |
GraphCopy& arcRef(ArcRef& map) {
|
| 1066 |
|
arcMapCopies.push_back(new _digraph_utils_bits::RefCopy<From, Arc,
|
|
967 |
_arc_maps.push_back(new _graph_utils_bits::RefCopy<From, Arc,
|
| 1067 |
968 |
ArcRefMap, ArcRef>(map));
|
| 1068 |
969 |
return *this;
|
| 1069 |
970 |
}
|
| 1070 |
971 |
|
| 1071 |
972 |
/// \brief Copies the arc cross references into the given map.
|
| 1072 |
973 |
///
|
| 1073 |
974 |
/// Copies the arc cross references (reverse references) into
|
| 1074 |
975 |
/// the given map.
|
| 1075 |
976 |
template <typename ArcCrossRef>
|
| 1076 |
977 |
GraphCopy& arcCrossRef(ArcCrossRef& map) {
|
| 1077 |
|
arcMapCopies.push_back(new _digraph_utils_bits::CrossRefCopy<From, Arc,
|
|
978 |
_arc_maps.push_back(new _graph_utils_bits::CrossRefCopy<From, Arc,
|
| 1078 |
979 |
ArcRefMap, ArcCrossRef>(map));
|
| 1079 |
980 |
return *this;
|
| 1080 |
981 |
}
|
| 1081 |
982 |
|
| 1082 |
983 |
/// \brief Make copy of the given map.
|
| 1083 |
984 |
///
|
| 1084 |
|
/// Makes copy of the given map for the newly created digraph.
|
| 1085 |
|
/// The new map's key type is the to digraph's arc type,
|
| 1086 |
|
/// and the copied map's key type is the from digraph's arc
|
|
985 |
/// Makes copy of the given map for the newly created graph.
|
|
986 |
/// The new map's key type is the to graph's arc type,
|
|
987 |
/// and the copied map's key type is the from graph's arc
|
| 1087 |
988 |
/// type.
|
| 1088 |
989 |
template <typename ToMap, typename FromMap>
|
| 1089 |
990 |
GraphCopy& arcMap(ToMap& tmap, const FromMap& map) {
|
| 1090 |
|
arcMapCopies.push_back(new _digraph_utils_bits::MapCopy<From, Arc,
|
|
991 |
_arc_maps.push_back(new _graph_utils_bits::MapCopy<From, Arc,
|
| 1091 |
992 |
ArcRefMap, ToMap, FromMap>(tmap, map));
|
| 1092 |
993 |
return *this;
|
| 1093 |
994 |
}
|
| 1094 |
995 |
|
| 1095 |
996 |
/// \brief Make a copy of the given arc.
|
| 1096 |
997 |
///
|
| 1097 |
998 |
/// Make a copy of the given arc.
|
| 1098 |
999 |
GraphCopy& arc(TArc& tarc, const Arc& sarc) {
|
| 1099 |
|
arcMapCopies.push_back(new _digraph_utils_bits::ItemCopy<From, Arc,
|
|
1000 |
_arc_maps.push_back(new _graph_utils_bits::ItemCopy<From, Arc,
|
| 1100 |
1001 |
ArcRefMap, TArc>(tarc, sarc));
|
| 1101 |
1002 |
return *this;
|
| 1102 |
1003 |
}
|
| 1103 |
1004 |
|
| 1104 |
1005 |
/// \brief Copies the edge references into the given map.
|
| 1105 |
1006 |
///
|
| 1106 |
1007 |
/// Copies the edge references into the given map.
|
| 1107 |
1008 |
template <typename EdgeRef>
|
| 1108 |
1009 |
GraphCopy& edgeRef(EdgeRef& map) {
|
| 1109 |
|
edgeMapCopies.push_back(new _digraph_utils_bits::RefCopy<From, Edge,
|
|
1010 |
_edge_maps.push_back(new _graph_utils_bits::RefCopy<From, Edge,
|
| 1110 |
1011 |
EdgeRefMap, EdgeRef>(map));
|
| 1111 |
1012 |
return *this;
|
| 1112 |
1013 |
}
|
| 1113 |
1014 |
|
| 1114 |
1015 |
/// \brief Copies the edge cross references into the given map.
|
| 1115 |
1016 |
///
|
| 1116 |
1017 |
/// Copies the edge cross references (reverse
|
| 1117 |
1018 |
/// references) into the given map.
|
| 1118 |
1019 |
template <typename EdgeCrossRef>
|
| 1119 |
1020 |
GraphCopy& edgeCrossRef(EdgeCrossRef& map) {
|
| 1120 |
|
edgeMapCopies.push_back(new _digraph_utils_bits::CrossRefCopy<From,
|
|
1021 |
_edge_maps.push_back(new _graph_utils_bits::CrossRefCopy<From,
|
| 1121 |
1022 |
Edge, EdgeRefMap, EdgeCrossRef>(map));
|
| 1122 |
1023 |
return *this;
|
| 1123 |
1024 |
}
|
| 1124 |
1025 |
|
| 1125 |
1026 |
/// \brief Make copy of the given map.
|
| 1126 |
1027 |
///
|
| 1127 |
|
/// Makes copy of the given map for the newly created digraph.
|
| 1128 |
|
/// The new map's key type is the to digraph's edge type,
|
| 1129 |
|
/// and the copied map's key type is the from digraph's edge
|
|
1028 |
/// Makes copy of the given map for the newly created graph.
|
|
1029 |
/// The new map's key type is the to graph's edge type,
|
|
1030 |
/// and the copied map's key type is the from graph's edge
|
| 1130 |
1031 |
/// type.
|
| 1131 |
1032 |
template <typename ToMap, typename FromMap>
|
| 1132 |
1033 |
GraphCopy& edgeMap(ToMap& tmap, const FromMap& map) {
|
| 1133 |
|
edgeMapCopies.push_back(new _digraph_utils_bits::MapCopy<From, Edge,
|
|
1034 |
_edge_maps.push_back(new _graph_utils_bits::MapCopy<From, Edge,
|
| 1134 |
1035 |
EdgeRefMap, ToMap, FromMap>(tmap, map));
|
| 1135 |
1036 |
return *this;
|
| 1136 |
1037 |
}
|
| 1137 |
1038 |
|
| 1138 |
1039 |
/// \brief Make a copy of the given edge.
|
| 1139 |
1040 |
///
|
| 1140 |
1041 |
/// Make a copy of the given edge.
|
| 1141 |
1042 |
GraphCopy& edge(TEdge& tedge, const Edge& sedge) {
|
| 1142 |
|
edgeMapCopies.push_back(new _digraph_utils_bits::ItemCopy<From, Edge,
|
|
1043 |
_edge_maps.push_back(new _graph_utils_bits::ItemCopy<From, Edge,
|
| 1143 |
1044 |
EdgeRefMap, TEdge>(tedge, sedge));
|
| 1144 |
1045 |
return *this;
|
| 1145 |
1046 |
}
|
| 1146 |
1047 |
|
| 1147 |
1048 |
/// \brief Executes the copies.
|
| 1148 |
1049 |
///
|
| 1149 |
1050 |
/// Executes the copies.
|
| 1150 |
1051 |
void run() {
|
| 1151 |
|
NodeRefMap nodeRefMap(from);
|
| 1152 |
|
EdgeRefMap edgeRefMap(from);
|
| 1153 |
|
ArcRefMap arcRefMap(to, from, edgeRefMap, nodeRefMap);
|
| 1154 |
|
_digraph_utils_bits::GraphCopySelector<To>::
|
| 1155 |
|
copy(to, from, nodeRefMap, edgeRefMap);
|
| 1156 |
|
for (int i = 0; i < int(nodeMapCopies.size()); ++i) {
|
| 1157 |
|
nodeMapCopies[i]->copy(from, nodeRefMap);
|
|
1052 |
NodeRefMap nodeRefMap(_from);
|
|
1053 |
EdgeRefMap edgeRefMap(_from);
|
|
1054 |
ArcRefMap arcRefMap(_to, _from, edgeRefMap, nodeRefMap);
|
|
1055 |
_graph_utils_bits::GraphCopySelector<To>::
|
|
1056 |
copy(_to, _from, nodeRefMap, edgeRefMap);
|
|
1057 |
for (int i = 0; i < int(_node_maps.size()); ++i) {
|
|
1058 |
_node_maps[i]->copy(_from, nodeRefMap);
|
| 1158 |
1059 |
}
|
| 1159 |
|
for (int i = 0; i < int(edgeMapCopies.size()); ++i) {
|
| 1160 |
|
edgeMapCopies[i]->copy(from, edgeRefMap);
|
|
1060 |
for (int i = 0; i < int(_edge_maps.size()); ++i) {
|
|
1061 |
_edge_maps[i]->copy(_from, edgeRefMap);
|
| 1161 |
1062 |
}
|
| 1162 |
|
for (int i = 0; i < int(arcMapCopies.size()); ++i) {
|
| 1163 |
|
arcMapCopies[i]->copy(from, arcRefMap);
|
|
1063 |
for (int i = 0; i < int(_arc_maps.size()); ++i) {
|
|
1064 |
_arc_maps[i]->copy(_from, arcRefMap);
|
| 1164 |
1065 |
}
|
| 1165 |
1066 |
}
|
| 1166 |
1067 |
|
| 1167 |
1068 |
private:
|
| 1168 |
1069 |
|
| 1169 |
|
const From& from;
|
| 1170 |
|
To& to;
|
| 1171 |
|
|
| 1172 |
|
std::vector<_digraph_utils_bits::MapCopyBase<From, Node, NodeRefMap>* >
|
| 1173 |
|
nodeMapCopies;
|
| 1174 |
|
|
| 1175 |
|
std::vector<_digraph_utils_bits::MapCopyBase<From, Arc, ArcRefMap>* >
|
| 1176 |
|
arcMapCopies;
|
| 1177 |
|
|
| 1178 |
|
std::vector<_digraph_utils_bits::MapCopyBase<From, Edge, EdgeRefMap>* >
|
| 1179 |
|
edgeMapCopies;
|
|
1070 |
const From& _from;
|
|
1071 |
To& _to;
|
|
1072 |
|
|
1073 |
std::vector<_graph_utils_bits::MapCopyBase<From, Node, NodeRefMap>* >
|
|
1074 |
_node_maps;
|
|
1075 |
|
|
1076 |
std::vector<_graph_utils_bits::MapCopyBase<From, Arc, ArcRefMap>* >
|
|
1077 |
_arc_maps;
|
|
1078 |
|
|
1079 |
std::vector<_graph_utils_bits::MapCopyBase<From, Edge, EdgeRefMap>* >
|
|
1080 |
_edge_maps;
|
| 1180 |
1081 |
|
| 1181 |
1082 |
};
|
| 1182 |
1083 |
|
| 1183 |
|
/// \brief Copy an graph to another digraph.
|
|
1084 |
/// \brief Copy a graph to another graph.
|
| 1184 |
1085 |
///
|
| 1185 |
|
/// Copy an graph to another digraph.
|
| 1186 |
|
/// The usage of the function:
|
| 1187 |
|
///
|
|
1086 |
/// Copy a graph to another graph. The complete usage of the
|
|
1087 |
/// function is detailed in the GraphCopy class, but a short
|
|
1088 |
/// example shows a basic work:
|
| 1188 |
1089 |
///\code
|
| 1189 |
1090 |
/// copyGraph(trg, src).nodeRef(nr).arcCrossRef(ecr).run();
|
| 1190 |
1091 |
///\endcode
|
| 1191 |
1092 |
///
|
| 1192 |
1093 |
/// After the copy the \c nr map will contain the mapping from the
|
| 1193 |
|
/// nodes of the \c from digraph to the nodes of the \c to digraph and
|
| 1194 |
|
/// \c ecr will contain the mapping from the arcs of the \c to digraph
|
| 1195 |
|
/// to the arcs of the \c from digraph.
|
|
1094 |
/// nodes of the \c from graph to the nodes of the \c to graph and
|
|
1095 |
/// \c ecr will contain the mapping from the arcs of the \c to graph
|
|
1096 |
/// to the arcs of the \c from graph.
|
| 1196 |
1097 |
///
|
| 1197 |
1098 |
/// \see GraphCopy
|
| 1198 |
1099 |
template <typename To, typename From>
|
| 1199 |
1100 |
GraphCopy<To, From>
|
| 1200 |
1101 |
copyGraph(To& to, const From& from) {
|
| 1201 |
1102 |
return GraphCopy<To, From>(to, from);
|
| 1202 |
1103 |
}
|
| 1203 |
1104 |
|
| 1204 |
|
/// \brief Class to copy a bipartite digraph.
|
| 1205 |
|
///
|
| 1206 |
|
/// Class to copy a bipartite digraph to another digraph
|
| 1207 |
|
/// (duplicate a digraph). The simplest way of using it is through
|
| 1208 |
|
/// the \c copyBpGraph() function.
|
| 1209 |
|
template <typename To, typename From>
|
| 1210 |
|
class BpGraphCopy {
|
| 1211 |
|
private:
|
| 1212 |
|
|
| 1213 |
|
typedef typename From::Node Node;
|
| 1214 |
|
typedef typename From::Red Red;
|
| 1215 |
|
typedef typename From::Blue Blue;
|
| 1216 |
|
typedef typename From::NodeIt NodeIt;
|
| 1217 |
|
typedef typename From::Arc Arc;
|
| 1218 |
|
typedef typename From::ArcIt ArcIt;
|
| 1219 |
|
typedef typename From::Edge Edge;
|
| 1220 |
|
typedef typename From::EdgeIt EdgeIt;
|
| 1221 |
|
|
| 1222 |
|
typedef typename To::Node TNode;
|
| 1223 |
|
typedef typename To::Arc TArc;
|
| 1224 |
|
typedef typename To::Edge TEdge;
|
| 1225 |
|
|
| 1226 |
|
typedef typename From::template RedMap<TNode> RedRefMap;
|
| 1227 |
|
typedef typename From::template BlueMap<TNode> BlueRefMap;
|
| 1228 |
|
typedef typename From::template EdgeMap<TEdge> EdgeRefMap;
|
| 1229 |
|
|
| 1230 |
|
struct NodeRefMap {
|
| 1231 |
|
NodeRefMap(const From& _from, const RedRefMap& _red_ref,
|
| 1232 |
|
const BlueRefMap& _blue_ref)
|
| 1233 |
|
: from(_from), red_ref(_red_ref), blue_ref(_blue_ref) {}
|
| 1234 |
|
|
| 1235 |
|
typedef typename From::Node Key;
|
| 1236 |
|
typedef typename To::Node Value;
|
| 1237 |
|
|
| 1238 |
|
Value operator[](const Key& key) const {
|
| 1239 |
|
return from.red(key) ? red_ref[key] : blue_ref[key];
|
| 1240 |
|
}
|
| 1241 |
|
|
| 1242 |
|
const From& from;
|
| 1243 |
|
const RedRefMap& red_ref;
|
| 1244 |
|
const BlueRefMap& blue_ref;
|
| 1245 |
|
};
|
| 1246 |
|
|
| 1247 |
|
struct ArcRefMap {
|
| 1248 |
|
ArcRefMap(const To& _to, const From& _from,
|
| 1249 |
|
const EdgeRefMap& _edge_ref, const NodeRefMap& _node_ref)
|
| 1250 |
|
: to(_to), from(_from),
|
| 1251 |
|
edge_ref(_edge_ref), node_ref(_node_ref) {}
|
| 1252 |
|
|
| 1253 |
|
typedef typename From::Arc Key;
|
| 1254 |
|
typedef typename To::Arc Value;
|
| 1255 |
|
|
| 1256 |
|
Value operator[](const Key& key) const {
|
| 1257 |
|
bool forward =
|
| 1258 |
|
(from.direction(key) ==
|
| 1259 |
|
(node_ref[from.source(static_cast<const Edge&>(key))] ==
|
| 1260 |
|
to.source(edge_ref[static_cast<const Edge&>(key)])));
|
| 1261 |
|
return to.direct(edge_ref[key], forward);
|
| 1262 |
|
}
|
| 1263 |
|
|
| 1264 |
|
const To& to;
|
| 1265 |
|
const From& from;
|
| 1266 |
|
const EdgeRefMap& edge_ref;
|
| 1267 |
|
const NodeRefMap& node_ref;
|
| 1268 |
|
};
|
| 1269 |
|
|
| 1270 |
|
public:
|
| 1271 |
|
|
| 1272 |
|
|
| 1273 |
|
/// \brief Constructor for the DigraphCopy.
|
| 1274 |
|
///
|
| 1275 |
|
/// It copies the content of the \c _from digraph into the
|
| 1276 |
|
/// \c _to digraph.
|
| 1277 |
|
BpGraphCopy(To& _to, const From& _from)
|
| 1278 |
|
: from(_from), to(_to) {}
|
| 1279 |
|
|
| 1280 |
|
/// \brief Destructor of the DigraphCopy
|
| 1281 |
|
///
|
| 1282 |
|
/// Destructor of the DigraphCopy
|
| 1283 |
|
~BpGraphCopy() {
|
| 1284 |
|
for (int i = 0; i < int(redMapCopies.size()); ++i) {
|
| 1285 |
|
delete redMapCopies[i];
|
| 1286 |
|
}
|
| 1287 |
|
for (int i = 0; i < int(blueMapCopies.size()); ++i) {
|
| 1288 |
|
delete blueMapCopies[i];
|
| 1289 |
|
}
|
| 1290 |
|
for (int i = 0; i < int(nodeMapCopies.size()); ++i) {
|
| 1291 |
|
delete nodeMapCopies[i];
|
| 1292 |
|
}
|
| 1293 |
|
for (int i = 0; i < int(arcMapCopies.size()); ++i) {
|
| 1294 |
|
delete arcMapCopies[i];
|
| 1295 |
|
}
|
| 1296 |
|
for (int i = 0; i < int(edgeMapCopies.size()); ++i) {
|
| 1297 |
|
delete edgeMapCopies[i];
|
| 1298 |
|
}
|
| 1299 |
|
|
| 1300 |
|
}
|
| 1301 |
|
|
| 1302 |
|
/// \brief Copies the A-node references into the given map.
|
| 1303 |
|
///
|
| 1304 |
|
/// Copies the A-node references into the given map.
|
| 1305 |
|
template <typename RedRef>
|
| 1306 |
|
BpGraphCopy& redRef(RedRef& map) {
|
| 1307 |
|
redMapCopies.push_back(new _digraph_utils_bits::RefCopy<From, Red,
|
| 1308 |
|
RedRefMap, RedRef>(map));
|
| 1309 |
|
return *this;
|
| 1310 |
|
}
|
| 1311 |
|
|
| 1312 |
|
/// \brief Copies the A-node cross references into the given map.
|
| 1313 |
|
///
|
| 1314 |
|
/// Copies the A-node cross references (reverse references) into
|
| 1315 |
|
/// the given map.
|
| 1316 |
|
template <typename RedCrossRef>
|
| 1317 |
|
BpGraphCopy& redCrossRef(RedCrossRef& map) {
|
| 1318 |
|
redMapCopies.push_back(new _digraph_utils_bits::CrossRefCopy<From,
|
| 1319 |
|
Red, RedRefMap, RedCrossRef>(map));
|
| 1320 |
|
return *this;
|
| 1321 |
|
}
|
| 1322 |
|
|
| 1323 |
|
/// \brief Make copy of the given A-node map.
|
| 1324 |
|
///
|
| 1325 |
|
/// Makes copy of the given map for the newly created digraph.
|
| 1326 |
|
/// The new map's key type is the to digraph's node type,
|
| 1327 |
|
/// and the copied map's key type is the from digraph's node
|
| 1328 |
|
/// type.
|
| 1329 |
|
template <typename ToMap, typename FromMap>
|
| 1330 |
|
BpGraphCopy& redMap(ToMap& tmap, const FromMap& map) {
|
| 1331 |
|
redMapCopies.push_back(new _digraph_utils_bits::MapCopy<From, Red,
|
| 1332 |
|
RedRefMap, ToMap, FromMap>(tmap, map));
|
| 1333 |
|
return *this;
|
| 1334 |
|
}
|
| 1335 |
|
|
| 1336 |
|
/// \brief Copies the B-node references into the given map.
|
| 1337 |
|
///
|
| 1338 |
|
/// Copies the B-node references into the given map.
|
| 1339 |
|
template <typename BlueRef>
|
| 1340 |
|
BpGraphCopy& blueRef(BlueRef& map) {
|
| 1341 |
|
blueMapCopies.push_back(new _digraph_utils_bits::RefCopy<From, Blue,
|
| 1342 |
|
BlueRefMap, BlueRef>(map));
|
| 1343 |
|
return *this;
|
| 1344 |
|
}
|
| 1345 |
|
|
| 1346 |
|
/// \brief Copies the B-node cross references into the given map.
|
| 1347 |
|
///
|
| 1348 |
|
/// Copies the B-node cross references (reverse references) into
|
| 1349 |
|
/// the given map.
|
| 1350 |
|
template <typename BlueCrossRef>
|
| 1351 |
|
BpGraphCopy& blueCrossRef(BlueCrossRef& map) {
|
| 1352 |
|
blueMapCopies.push_back(new _digraph_utils_bits::CrossRefCopy<From,
|
| 1353 |
|
Blue, BlueRefMap, BlueCrossRef>(map));
|
| 1354 |
|
return *this;
|
| 1355 |
|
}
|
| 1356 |
|
|
| 1357 |
|
/// \brief Make copy of the given B-node map.
|
| 1358 |
|
///
|
| 1359 |
|
/// Makes copy of the given map for the newly created digraph.
|
| 1360 |
|
/// The new map's key type is the to digraph's node type,
|
| 1361 |
|
/// and the copied map's key type is the from digraph's node
|
| 1362 |
|
/// type.
|
| 1363 |
|
template <typename ToMap, typename FromMap>
|
| 1364 |
|
BpGraphCopy& blueMap(ToMap& tmap, const FromMap& map) {
|
| 1365 |
|
blueMapCopies.push_back(new _digraph_utils_bits::MapCopy<From, Blue,
|
| 1366 |
|
BlueRefMap, ToMap, FromMap>(tmap, map));
|
| 1367 |
|
return *this;
|
| 1368 |
|
}
|
| 1369 |
|
/// \brief Copies the node references into the given map.
|
| 1370 |
|
///
|
| 1371 |
|
/// Copies the node references into the given map.
|
| 1372 |
|
template <typename NodeRef>
|
| 1373 |
|
BpGraphCopy& nodeRef(NodeRef& map) {
|
| 1374 |
|
nodeMapCopies.push_back(new _digraph_utils_bits::RefCopy<From, Node,
|
| 1375 |
|
NodeRefMap, NodeRef>(map));
|
| 1376 |
|
return *this;
|
| 1377 |
|
}
|
| 1378 |
|
|
| 1379 |
|
/// \brief Copies the node cross references into the given map.
|
| 1380 |
|
///
|
| 1381 |
|
/// Copies the node cross references (reverse references) into
|
| 1382 |
|
/// the given map.
|
| 1383 |
|
template <typename NodeCrossRef>
|
| 1384 |
|
BpGraphCopy& nodeCrossRef(NodeCrossRef& map) {
|
| 1385 |
|
nodeMapCopies.push_back(new _digraph_utils_bits::CrossRefCopy<From, Node,
|
| 1386 |
|
NodeRefMap, NodeCrossRef>(map));
|
| 1387 |
|
return *this;
|
| 1388 |
|
}
|
| 1389 |
|
|
| 1390 |
|
/// \brief Make copy of the given map.
|
| 1391 |
|
///
|
| 1392 |
|
/// Makes copy of the given map for the newly created digraph.
|
| 1393 |
|
/// The new map's key type is the to digraph's node type,
|
| 1394 |
|
/// and the copied map's key type is the from digraph's node
|
| 1395 |
|
/// type.
|
| 1396 |
|
template <typename ToMap, typename FromMap>
|
| 1397 |
|
BpGraphCopy& nodeMap(ToMap& tmap, const FromMap& map) {
|
| 1398 |
|
nodeMapCopies.push_back(new _digraph_utils_bits::MapCopy<From, Node,
|
| 1399 |
|
NodeRefMap, ToMap, FromMap>(tmap, map));
|
| 1400 |
|
return *this;
|
| 1401 |
|
}
|
| 1402 |
|
|
| 1403 |
|
/// \brief Make a copy of the given node.
|
| 1404 |
|
///
|
| 1405 |
|
/// Make a copy of the given node.
|
| 1406 |
|
BpGraphCopy& node(TNode& tnode, const Node& snode) {
|
| 1407 |
|
nodeMapCopies.push_back(new _digraph_utils_bits::ItemCopy<From, Node,
|
| 1408 |
|
NodeRefMap, TNode>(tnode, snode));
|
| 1409 |
|
return *this;
|
| 1410 |
|
}
|
| 1411 |
|
|
| 1412 |
|
/// \brief Copies the arc references into the given map.
|
| 1413 |
|
///
|
| 1414 |
|
/// Copies the arc references into the given map.
|
| 1415 |
|
template <typename ArcRef>
|
| 1416 |
|
BpGraphCopy& arcRef(ArcRef& map) {
|
| 1417 |
|
arcMapCopies.push_back(new _digraph_utils_bits::RefCopy<From, Arc,
|
| 1418 |
|
ArcRefMap, ArcRef>(map));
|
| 1419 |
|
return *this;
|
| 1420 |
|
}
|
| 1421 |
|
|
| 1422 |
|
/// \brief Copies the arc cross references into the given map.
|
| 1423 |
|
///
|
| 1424 |
|
/// Copies the arc cross references (reverse references) into
|
| 1425 |
|
/// the given map.
|
| 1426 |
|
template <typename ArcCrossRef>
|
| 1427 |
|
BpGraphCopy& arcCrossRef(ArcCrossRef& map) {
|
| 1428 |
|
arcMapCopies.push_back(new _digraph_utils_bits::CrossRefCopy<From, Arc,
|
| 1429 |
|
ArcRefMap, ArcCrossRef>(map));
|
| 1430 |
|
return *this;
|
| 1431 |
|
}
|
| 1432 |
|
|
| 1433 |
|
/// \brief Make copy of the given map.
|
| 1434 |
|
///
|
| 1435 |
|
/// Makes copy of the given map for the newly created digraph.
|
| 1436 |
|
/// The new map's key type is the to digraph's arc type,
|
| 1437 |
|
/// and the copied map's key type is the from digraph's arc
|
| 1438 |
|
/// type.
|
| 1439 |
|
template <typename ToMap, typename FromMap>
|
| 1440 |
|
BpGraphCopy& arcMap(ToMap& tmap, const FromMap& map) {
|
| 1441 |
|
arcMapCopies.push_back(new _digraph_utils_bits::MapCopy<From, Arc,
|
| 1442 |
|
ArcRefMap, ToMap, FromMap>(tmap, map));
|
| 1443 |
|
return *this;
|
| 1444 |
|
}
|
| 1445 |
|
|
| 1446 |
|
/// \brief Make a copy of the given arc.
|
| 1447 |
|
///
|
| 1448 |
|
/// Make a copy of the given arc.
|
| 1449 |
|
BpGraphCopy& arc(TArc& tarc, const Arc& sarc) {
|
| 1450 |
|
arcMapCopies.push_back(new _digraph_utils_bits::ItemCopy<From, Arc,
|
| 1451 |
|
ArcRefMap, TArc>(tarc, sarc));
|
| 1452 |
|
return *this;
|
| 1453 |
|
}
|
| 1454 |
|
|
| 1455 |
|
/// \brief Copies the edge references into the given map.
|
| 1456 |
|
///
|
| 1457 |
|
/// Copies the edge references into the given map.
|
| 1458 |
|
template <typename EdgeRef>
|
| 1459 |
|
BpGraphCopy& edgeRef(EdgeRef& map) {
|
| 1460 |
|
edgeMapCopies.push_back(new _digraph_utils_bits::RefCopy<From, Edge,
|
| 1461 |
|
EdgeRefMap, EdgeRef>(map));
|
| 1462 |
|
return *this;
|
| 1463 |
|
}
|
| 1464 |
|
|
| 1465 |
|
/// \brief Copies the edge cross references into the given map.
|
| 1466 |
|
///
|
| 1467 |
|
/// Copies the edge cross references (reverse
|
| 1468 |
|
/// references) into the given map.
|
| 1469 |
|
template <typename EdgeCrossRef>
|
| 1470 |
|
BpGraphCopy& edgeCrossRef(EdgeCrossRef& map) {
|
| 1471 |
|
edgeMapCopies.push_back(new _digraph_utils_bits::CrossRefCopy<From,
|
| 1472 |
|
Edge, EdgeRefMap, EdgeCrossRef>(map));
|
| 1473 |
|
return *this;
|
| 1474 |
|
}
|
| 1475 |
|
|
| 1476 |
|
/// \brief Make copy of the given map.
|
| 1477 |
|
///
|
| 1478 |
|
/// Makes copy of the given map for the newly created digraph.
|
| 1479 |
|
/// The new map's key type is the to digraph's edge type,
|
| 1480 |
|
/// and the copied map's key type is the from digraph's edge
|
| 1481 |
|
/// type.
|
| 1482 |
|
template <typename ToMap, typename FromMap>
|
| 1483 |
|
BpGraphCopy& edgeMap(ToMap& tmap, const FromMap& map) {
|
| 1484 |
|
edgeMapCopies.push_back(new _digraph_utils_bits::MapCopy<From, Edge,
|
| 1485 |
|
EdgeRefMap, ToMap, FromMap>(tmap, map));
|
| 1486 |
|
return *this;
|
| 1487 |
|
}
|
| 1488 |
|
|
| 1489 |
|
/// \brief Make a copy of the given edge.
|
| 1490 |
|
///
|
| 1491 |
|
/// Make a copy of the given edge.
|
| 1492 |
|
BpGraphCopy& edge(TEdge& tedge, const Edge& sedge) {
|
| 1493 |
|
edgeMapCopies.push_back(new _digraph_utils_bits::ItemCopy<From, Edge,
|
| 1494 |
|
EdgeRefMap, TEdge>(tedge, sedge));
|
| 1495 |
|
return *this;
|
| 1496 |
|
}
|
| 1497 |
|
|
| 1498 |
|
/// \brief Executes the copies.
|
| 1499 |
|
///
|
| 1500 |
|
/// Executes the copies.
|
| 1501 |
|
void run() {
|
| 1502 |
|
RedRefMap redRefMap(from);
|
| 1503 |
|
BlueRefMap blueRefMap(from);
|
| 1504 |
|
NodeRefMap nodeRefMap(from, redRefMap, blueRefMap);
|
| 1505 |
|
EdgeRefMap edgeRefMap(from);
|
| 1506 |
|
ArcRefMap arcRefMap(to, from, edgeRefMap, nodeRefMap);
|
| 1507 |
|
_digraph_utils_bits::BpGraphCopySelector<To>::
|
| 1508 |
|
copy(to, from, redRefMap, blueRefMap, edgeRefMap);
|
| 1509 |
|
for (int i = 0; i < int(redMapCopies.size()); ++i) {
|
| 1510 |
|
redMapCopies[i]->copy(from, redRefMap);
|
| 1511 |
|
}
|
| 1512 |
|
for (int i = 0; i < int(blueMapCopies.size()); ++i) {
|
| 1513 |
|
blueMapCopies[i]->copy(from, blueRefMap);
|
| 1514 |
|
}
|
| 1515 |
|
for (int i = 0; i < int(nodeMapCopies.size()); ++i) {
|
| 1516 |
|
nodeMapCopies[i]->copy(from, nodeRefMap);
|
| 1517 |
|
}
|
| 1518 |
|
for (int i = 0; i < int(edgeMapCopies.size()); ++i) {
|
| 1519 |
|
edgeMapCopies[i]->copy(from, edgeRefMap);
|
| 1520 |
|
}
|
| 1521 |
|
for (int i = 0; i < int(arcMapCopies.size()); ++i) {
|
| 1522 |
|
arcMapCopies[i]->copy(from, arcRefMap);
|
| 1523 |
|
}
|
| 1524 |
|
}
|
| 1525 |
|
|
| 1526 |
|
private:
|
| 1527 |
|
|
| 1528 |
|
const From& from;
|
| 1529 |
|
To& to;
|
| 1530 |
|
|
| 1531 |
|
std::vector<_digraph_utils_bits::MapCopyBase<From, Red, RedRefMap>* >
|
| 1532 |
|
redMapCopies;
|
| 1533 |
|
|
| 1534 |
|
std::vector<_digraph_utils_bits::MapCopyBase<From, Blue, BlueRefMap>* >
|
| 1535 |
|
blueMapCopies;
|
| 1536 |
|
|
| 1537 |
|
std::vector<_digraph_utils_bits::MapCopyBase<From, Node, NodeRefMap>* >
|
| 1538 |
|
nodeMapCopies;
|
| 1539 |
|
|
| 1540 |
|
std::vector<_digraph_utils_bits::MapCopyBase<From, Arc, ArcRefMap>* >
|
| 1541 |
|
arcMapCopies;
|
| 1542 |
|
|
| 1543 |
|
std::vector<_digraph_utils_bits::MapCopyBase<From, Edge, EdgeRefMap>* >
|
| 1544 |
|
edgeMapCopies;
|
| 1545 |
|
|
| 1546 |
|
};
|
| 1547 |
|
|
| 1548 |
|
/// \brief Copy a bipartite digraph to another digraph.
|
| 1549 |
|
///
|
| 1550 |
|
/// Copy a bipartite digraph to another digraph.
|
| 1551 |
|
/// The usage of the function:
|
| 1552 |
|
///
|
| 1553 |
|
///\code
|
| 1554 |
|
/// copyBpGraph(trg, src).redRef(anr).arcCrossRef(ecr).run();
|
| 1555 |
|
///\endcode
|
| 1556 |
|
///
|
| 1557 |
|
/// After the copy the \c nr map will contain the mapping from the
|
| 1558 |
|
/// nodes of the \c from digraph to the nodes of the \c to digraph and
|
| 1559 |
|
/// \c ecr will contain the mapping from the arcs of the \c to digraph
|
| 1560 |
|
/// to the arcs of the \c from digraph.
|
| 1561 |
|
///
|
| 1562 |
|
/// \see BpGraphCopy
|
| 1563 |
|
template <typename To, typename From>
|
| 1564 |
|
BpGraphCopy<To, From>
|
| 1565 |
|
copyBpGraph(To& to, const From& from) {
|
| 1566 |
|
return BpGraphCopy<To, From>(to, from);
|
| 1567 |
|
}
|
| 1568 |
|
|
| 1569 |
|
|
| 1570 |
1105 |
/// @}
|
| 1571 |
1106 |
|
| 1572 |
|
/// \addtogroup digraph_maps
|
|
1107 |
/// \addtogroup graph_maps
|
| 1573 |
1108 |
/// @{
|
| 1574 |
1109 |
|
| 1575 |
|
/// Provides an immutable and unique id for each item in the digraph.
|
|
1110 |
/// Provides an immutable and unique id for each item in the graph.
|
| 1576 |
1111 |
|
| 1577 |
1112 |
/// The IdMap class provides a unique and immutable id for each item of the
|
| 1578 |
|
/// same type (e.g. node) in the digraph. This id is <ul><li>\b unique:
|
|
1113 |
/// same type (e.g. node) in the graph. This id is <ul><li>\b unique:
|
| 1579 |
1114 |
/// different items (nodes) get different ids <li>\b immutable: the id of an
|
| 1580 |
1115 |
/// item (node) does not change (even if you delete other nodes). </ul>
|
| 1581 |
1116 |
/// Through this map you get access (i.e. can read) the inner id values of
|
| 1582 |
|
/// the items stored in the digraph. This map can be inverted with its member
|
| 1583 |
|
/// class \c InverseMap.
|
|
1117 |
/// the items stored in the graph. This map can be inverted with its member
|
|
1118 |
/// class \c InverseMap or with the \c operator() member.
|
| 1584 |
1119 |
///
|
| 1585 |
|
template <typename _Digraph, typename _Item>
|
|
1120 |
template <typename _Graph, typename _Item>
|
| 1586 |
1121 |
class IdMap {
|
| 1587 |
1122 |
public:
|
| 1588 |
|
typedef _Digraph Digraph;
|
|
1123 |
typedef _Graph Graph;
|
| 1589 |
1124 |
typedef int Value;
|
| 1590 |
1125 |
typedef _Item Item;
|
| 1591 |
1126 |
typedef _Item Key;
|
| 1592 |
1127 |
|
| 1593 |
1128 |
/// \brief Constructor.
|
| 1594 |
1129 |
///
|
| 1595 |
1130 |
/// Constructor of the map.
|
| 1596 |
|
explicit IdMap(const Digraph& _digraph) : digraph(&_digraph) {}
|
|
1131 |
explicit IdMap(const Graph& graph) : _graph(&graph) {}
|
| 1597 |
1132 |
|
| 1598 |
1133 |
/// \brief Gives back the \e id of the item.
|
| 1599 |
1134 |
///
|
| 1600 |
1135 |
/// Gives back the immutable and unique \e id of the item.
|
| 1601 |
|
int operator[](const Item& item) const { return digraph->id(item);}
|
|
1136 |
int operator[](const Item& item) const { return _graph->id(item);}
|
| 1602 |
1137 |
|
| 1603 |
1138 |
/// \brief Gives back the item by its id.
|
| 1604 |
1139 |
///
|
| 1605 |
1140 |
/// Gives back the item by its id.
|
| 1606 |
|
Item operator()(int id) { return digraph->fromId(id, Item()); }
|
|
1141 |
Item operator()(int id) { return _graph->fromId(id, Item()); }
|
| 1607 |
1142 |
|
| 1608 |
1143 |
private:
|
| 1609 |
|
const Digraph* digraph;
|
|
1144 |
const Graph* _graph;
|
| 1610 |
1145 |
|
| 1611 |
1146 |
public:
|
| 1612 |
1147 |
|
| 1613 |
1148 |
/// \brief The class represents the inverse of its owner (IdMap).
|
| 1614 |
1149 |
///
|
| 1615 |
1150 |
/// The class represents the inverse of its owner (IdMap).
|
| 1616 |
1151 |
/// \see inverse()
|
| 1617 |
1152 |
class InverseMap {
|
| 1618 |
1153 |
public:
|
| 1619 |
1154 |
|
| 1620 |
1155 |
/// \brief Constructor.
|
| 1621 |
1156 |
///
|
| 1622 |
1157 |
/// Constructor for creating an id-to-item map.
|
| 1623 |
|
explicit InverseMap(const Digraph& _digraph) : digraph(&_digraph) {}
|
|
1158 |
explicit InverseMap(const Graph& graph) : _graph(&graph) {}
|
| 1624 |
1159 |
|
| 1625 |
1160 |
/// \brief Constructor.
|
| 1626 |
1161 |
///
|
| 1627 |
1162 |
/// Constructor for creating an id-to-item map.
|
| 1628 |
|
explicit InverseMap(const IdMap& idMap) : digraph(idMap.digraph) {}
|
|
1163 |
explicit InverseMap(const IdMap& map) : _graph(map._graph) {}
|
| 1629 |
1164 |
|
| 1630 |
1165 |
/// \brief Gives back the given item from its id.
|
| 1631 |
1166 |
///
|
| 1632 |
1167 |
/// Gives back the given item from its id.
|
| 1633 |
1168 |
///
|
| 1634 |
|
Item operator[](int id) const { return digraph->fromId(id, Item());}
|
|
1169 |
Item operator[](int id) const { return _graph->fromId(id, Item());}
|
| 1635 |
1170 |
|
| 1636 |
1171 |
private:
|
| 1637 |
|
const Digraph* digraph;
|
|
1172 |
const Graph* _graph;
|
| 1638 |
1173 |
};
|
| 1639 |
1174 |
|
| 1640 |
1175 |
/// \brief Gives back the inverse of the map.
|
| 1641 |
1176 |
///
|
| 1642 |
1177 |
/// Gives back the inverse of the IdMap.
|
| 1643 |
|
InverseMap inverse() const { return InverseMap(*digraph);}
|
|
1178 |
InverseMap inverse() const { return InverseMap(*_graph);}
|
| 1644 |
1179 |
|
| 1645 |
1180 |
};
|
| 1646 |
1181 |
|
| 1647 |
1182 |
|
| 1648 |
|
/// \brief General invertable digraph-map type.
|
| 1649 |
|
|
| 1650 |
|
/// This type provides simple invertable digraph-maps.
|
|
1183 |
/// \brief General invertable graph-map type.
|
|
1184 |
|
|
1185 |
/// This type provides simple invertable graph-maps.
|
| 1651 |
1186 |
/// The InvertableMap wraps an arbitrary ReadWriteMap
|
| 1652 |
1187 |
/// and if a key is set to a new value then store it
|
| 1653 |
1188 |
/// in the inverse map.
|
| 1654 |
1189 |
///
|
| 1655 |
1190 |
/// The values of the map can be accessed
|
| 1656 |
1191 |
/// with stl compatible forward iterator.
|
| 1657 |
1192 |
///
|
| 1658 |
|
/// \param _Digraph The digraph type.
|
| 1659 |
|
/// \param _Item The item type of the digraph.
|
|
1193 |
/// \param _Graph The graph type.
|
|
1194 |
/// \param _Item The item type of the graph.
|
| 1660 |
1195 |
/// \param _Value The value type of the map.
|
| 1661 |
1196 |
///
|
| 1662 |
1197 |
/// \see IterableValueMap
|
| 1663 |
|
template <typename _Digraph, typename _Item, typename _Value>
|
| 1664 |
|
class InvertableMap : protected DefaultMap<_Digraph, _Item, _Value> {
|
|
1198 |
template <typename _Graph, typename _Item, typename _Value>
|
|
1199 |
class InvertableMap : protected DefaultMap<_Graph, _Item, _Value> {
|
| 1665 |
1200 |
private:
|
| 1666 |
1201 |
|
| 1667 |
|
typedef DefaultMap<_Digraph, _Item, _Value> Map;
|
| 1668 |
|
typedef _Digraph Digraph;
|
|
1202 |
typedef DefaultMap<_Graph, _Item, _Value> Map;
|
|
1203 |
typedef _Graph Graph;
|
| 1669 |
1204 |
|
| 1670 |
1205 |
typedef std::map<_Value, _Item> Container;
|
| 1671 |
|
Container invMap;
|
|
1206 |
Container _inv_map;
|
| 1672 |
1207 |
|
| 1673 |
1208 |
public:
|
| 1674 |
1209 |
|
| 1675 |
1210 |
/// The key type of InvertableMap (Node, Arc, Edge).
|
| 1676 |
1211 |
typedef typename Map::Key Key;
|
| 1677 |
1212 |
/// The value type of the InvertableMap.
|
| 1678 |
1213 |
typedef typename Map::Value Value;
|
| 1679 |
1214 |
|
| 1680 |
1215 |
|
| 1681 |
1216 |
|
| 1682 |
1217 |
/// \brief Constructor.
|
| 1683 |
1218 |
///
|
| 1684 |
|
/// Construct a new InvertableMap for the digraph.
|
|
1219 |
/// Construct a new InvertableMap for the graph.
|
| 1685 |
1220 |
///
|
| 1686 |
|
explicit InvertableMap(const Digraph& digraph) : Map(digraph) {}
|
|
1221 |
explicit InvertableMap(const Graph& graph) : Map(graph) {}
|
| 1687 |
1222 |
|
| 1688 |
1223 |
/// \brief Forward iterator for values.
|
| 1689 |
1224 |
///
|
| 1690 |
1225 |
/// This iterator is an stl compatible forward
|
| 1691 |
1226 |
/// iterator on the values of the map. The values can
|
| 1692 |
1227 |
/// be accessed in the [beginValue, endValue) range.
|
| 1693 |
1228 |
///
|
| 1694 |
1229 |
class ValueIterator
|
| 1695 |
1230 |
: public std::iterator<std::forward_iterator_tag, Value> {
|
| 1696 |
1231 |
friend class InvertableMap;
|
| 1697 |
1232 |
private:
|
| 1698 |
1233 |
ValueIterator(typename Container::const_iterator _it)
|
| ... |
... |
@@ -1716,335 +1251,335 @@
|
| 1716 |
1251 |
|
| 1717 |
1252 |
private:
|
| 1718 |
1253 |
typename Container::const_iterator it;
|
| 1719 |
1254 |
};
|
| 1720 |
1255 |
|
| 1721 |
1256 |
/// \brief Returns an iterator to the first value.
|
| 1722 |
1257 |
///
|
| 1723 |
1258 |
/// Returns an stl compatible iterator to the
|
| 1724 |
1259 |
/// first value of the map. The values of the
|
| 1725 |
1260 |
/// map can be accessed in the [beginValue, endValue)
|
| 1726 |
1261 |
/// range.
|
| 1727 |
1262 |
ValueIterator beginValue() const {
|
| 1728 |
|
return ValueIterator(invMap.begin());
|
|
1263 |
return ValueIterator(_inv_map.begin());
|
| 1729 |
1264 |
}
|
| 1730 |
1265 |
|
| 1731 |
1266 |
/// \brief Returns an iterator after the last value.
|
| 1732 |
1267 |
///
|
| 1733 |
1268 |
/// Returns an stl compatible iterator after the
|
| 1734 |
1269 |
/// last value of the map. The values of the
|
| 1735 |
1270 |
/// map can be accessed in the [beginValue, endValue)
|
| 1736 |
1271 |
/// range.
|
| 1737 |
1272 |
ValueIterator endValue() const {
|
| 1738 |
|
return ValueIterator(invMap.end());
|
|
1273 |
return ValueIterator(_inv_map.end());
|
| 1739 |
1274 |
}
|
| 1740 |
1275 |
|
| 1741 |
1276 |
/// \brief The setter function of the map.
|
| 1742 |
1277 |
///
|
| 1743 |
1278 |
/// Sets the mapped value.
|
| 1744 |
1279 |
void set(const Key& key, const Value& val) {
|
| 1745 |
1280 |
Value oldval = Map::operator[](key);
|
| 1746 |
|
typename Container::iterator it = invMap.find(oldval);
|
| 1747 |
|
if (it != invMap.end() && it->second == key) {
|
| 1748 |
|
invMap.erase(it);
|
|
1281 |
typename Container::iterator it = _inv_map.find(oldval);
|
|
1282 |
if (it != _inv_map.end() && it->second == key) {
|
|
1283 |
_inv_map.erase(it);
|
| 1749 |
1284 |
}
|
| 1750 |
|
invMap.insert(make_pair(val, key));
|
|
1285 |
_inv_map.insert(make_pair(val, key));
|
| 1751 |
1286 |
Map::set(key, val);
|
| 1752 |
1287 |
}
|
| 1753 |
1288 |
|
| 1754 |
1289 |
/// \brief The getter function of the map.
|
| 1755 |
1290 |
///
|
| 1756 |
1291 |
/// It gives back the value associated with the key.
|
| 1757 |
1292 |
typename MapTraits<Map>::ConstReturnValue
|
| 1758 |
1293 |
operator[](const Key& key) const {
|
| 1759 |
1294 |
return Map::operator[](key);
|
| 1760 |
1295 |
}
|
| 1761 |
1296 |
|
| 1762 |
1297 |
/// \brief Gives back the item by its value.
|
| 1763 |
1298 |
///
|
| 1764 |
1299 |
/// Gives back the item by its value.
|
| 1765 |
1300 |
Key operator()(const Value& key) const {
|
| 1766 |
|
typename Container::const_iterator it = invMap.find(key);
|
| 1767 |
|
return it != invMap.end() ? it->second : INVALID;
|
|
1301 |
typename Container::const_iterator it = _inv_map.find(key);
|
|
1302 |
return it != _inv_map.end() ? it->second : INVALID;
|
| 1768 |
1303 |
}
|
| 1769 |
1304 |
|
| 1770 |
1305 |
protected:
|
| 1771 |
1306 |
|
| 1772 |
1307 |
/// \brief Erase the key from the map.
|
| 1773 |
1308 |
///
|
| 1774 |
1309 |
/// Erase the key to the map. It is called by the
|
| 1775 |
1310 |
/// \c AlterationNotifier.
|
| 1776 |
1311 |
virtual void erase(const Key& key) {
|
| 1777 |
1312 |
Value val = Map::operator[](key);
|
| 1778 |
|
typename Container::iterator it = invMap.find(val);
|
| 1779 |
|
if (it != invMap.end() && it->second == key) {
|
| 1780 |
|
invMap.erase(it);
|
|
1313 |
typename Container::iterator it = _inv_map.find(val);
|
|
1314 |
if (it != _inv_map.end() && it->second == key) {
|
|
1315 |
_inv_map.erase(it);
|
| 1781 |
1316 |
}
|
| 1782 |
1317 |
Map::erase(key);
|
| 1783 |
1318 |
}
|
| 1784 |
1319 |
|
| 1785 |
1320 |
/// \brief Erase more keys from the map.
|
| 1786 |
1321 |
///
|
| 1787 |
1322 |
/// Erase more keys from the map. It is called by the
|
| 1788 |
1323 |
/// \c AlterationNotifier.
|
| 1789 |
1324 |
virtual void erase(const std::vector<Key>& keys) {
|
| 1790 |
1325 |
for (int i = 0; i < int(keys.size()); ++i) {
|
| 1791 |
1326 |
Value val = Map::operator[](keys[i]);
|
| 1792 |
|
typename Container::iterator it = invMap.find(val);
|
| 1793 |
|
if (it != invMap.end() && it->second == keys[i]) {
|
| 1794 |
|
invMap.erase(it);
|
|
1327 |
typename Container::iterator it = _inv_map.find(val);
|
|
1328 |
if (it != _inv_map.end() && it->second == keys[i]) {
|
|
1329 |
_inv_map.erase(it);
|
| 1795 |
1330 |
}
|
| 1796 |
1331 |
}
|
| 1797 |
1332 |
Map::erase(keys);
|
| 1798 |
1333 |
}
|
| 1799 |
1334 |
|
| 1800 |
1335 |
/// \brief Clear the keys from the map and inverse map.
|
| 1801 |
1336 |
///
|
| 1802 |
1337 |
/// Clear the keys from the map and inverse map. It is called by the
|
| 1803 |
1338 |
/// \c AlterationNotifier.
|
| 1804 |
1339 |
virtual void clear() {
|
| 1805 |
|
invMap.clear();
|
|
1340 |
_inv_map.clear();
|
| 1806 |
1341 |
Map::clear();
|
| 1807 |
1342 |
}
|
| 1808 |
1343 |
|
| 1809 |
1344 |
public:
|
| 1810 |
1345 |
|
| 1811 |
1346 |
/// \brief The inverse map type.
|
| 1812 |
1347 |
///
|
| 1813 |
1348 |
/// The inverse of this map. The subscript operator of the map
|
| 1814 |
1349 |
/// gives back always the item what was last assigned to the value.
|
| 1815 |
1350 |
class InverseMap {
|
| 1816 |
1351 |
public:
|
| 1817 |
1352 |
/// \brief Constructor of the InverseMap.
|
| 1818 |
1353 |
///
|
| 1819 |
1354 |
/// Constructor of the InverseMap.
|
| 1820 |
|
explicit InverseMap(const InvertableMap& _inverted)
|
| 1821 |
|
: inverted(_inverted) {}
|
|
1355 |
explicit InverseMap(const InvertableMap& inverted)
|
|
1356 |
: _inverted(inverted) {}
|
| 1822 |
1357 |
|
| 1823 |
1358 |
/// The value type of the InverseMap.
|
| 1824 |
1359 |
typedef typename InvertableMap::Key Value;
|
| 1825 |
1360 |
/// The key type of the InverseMap.
|
| 1826 |
1361 |
typedef typename InvertableMap::Value Key;
|
| 1827 |
1362 |
|
| 1828 |
1363 |
/// \brief Subscript operator.
|
| 1829 |
1364 |
///
|
| 1830 |
1365 |
/// Subscript operator. It gives back always the item
|
| 1831 |
1366 |
/// what was last assigned to the value.
|
| 1832 |
1367 |
Value operator[](const Key& key) const {
|
| 1833 |
|
return inverted(key);
|
|
1368 |
return _inverted(key);
|
| 1834 |
1369 |
}
|
| 1835 |
1370 |
|
| 1836 |
1371 |
private:
|
| 1837 |
|
const InvertableMap& inverted;
|
|
1372 |
const InvertableMap& _inverted;
|
| 1838 |
1373 |
};
|
| 1839 |
1374 |
|
| 1840 |
1375 |
/// \brief It gives back the just readable inverse map.
|
| 1841 |
1376 |
///
|
| 1842 |
1377 |
/// It gives back the just readable inverse map.
|
| 1843 |
1378 |
InverseMap inverse() const {
|
| 1844 |
1379 |
return InverseMap(*this);
|
| 1845 |
1380 |
}
|
| 1846 |
1381 |
|
| 1847 |
1382 |
|
| 1848 |
1383 |
|
| 1849 |
1384 |
};
|
| 1850 |
1385 |
|
| 1851 |
1386 |
/// \brief Provides a mutable, continuous and unique descriptor for each
|
| 1852 |
|
/// item in the digraph.
|
|
1387 |
/// item in the graph.
|
| 1853 |
1388 |
///
|
| 1854 |
1389 |
/// The DescriptorMap class provides a unique and continuous (but mutable)
|
| 1855 |
1390 |
/// descriptor (id) for each item of the same type (e.g. node) in the
|
| 1856 |
|
/// digraph. This id is <ul><li>\b unique: different items (nodes) get
|
|
1391 |
/// graph. This id is <ul><li>\b unique: different items (nodes) get
|
| 1857 |
1392 |
/// different ids <li>\b continuous: the range of the ids is the set of
|
| 1858 |
1393 |
/// integers between 0 and \c n-1, where \c n is the number of the items of
|
| 1859 |
1394 |
/// this type (e.g. nodes) (so the id of a node can change if you delete an
|
| 1860 |
1395 |
/// other node, i.e. this id is mutable). </ul> This map can be inverted
|
| 1861 |
|
/// with its member class \c InverseMap.
|
|
1396 |
/// with its member class \c InverseMap, or with the \c operator() member.
|
| 1862 |
1397 |
///
|
| 1863 |
|
/// \param _Digraph The digraph class the \c DescriptorMap belongs to.
|
|
1398 |
/// \param _Graph The graph class the \c DescriptorMap belongs to.
|
| 1864 |
1399 |
/// \param _Item The Item is the Key of the Map. It may be Node, Arc or
|
| 1865 |
1400 |
/// Edge.
|
| 1866 |
|
template <typename _Digraph, typename _Item>
|
| 1867 |
|
class DescriptorMap : protected DefaultMap<_Digraph, _Item, int> {
|
|
1401 |
template <typename _Graph, typename _Item>
|
|
1402 |
class DescriptorMap : protected DefaultMap<_Graph, _Item, int> {
|
| 1868 |
1403 |
|
| 1869 |
1404 |
typedef _Item Item;
|
| 1870 |
|
typedef DefaultMap<_Digraph, _Item, int> Map;
|
|
1405 |
typedef DefaultMap<_Graph, _Item, int> Map;
|
| 1871 |
1406 |
|
| 1872 |
1407 |
public:
|
| 1873 |
|
/// The digraph class of DescriptorMap.
|
| 1874 |
|
typedef _Digraph Digraph;
|
|
1408 |
/// The graph class of DescriptorMap.
|
|
1409 |
typedef _Graph Graph;
|
| 1875 |
1410 |
|
| 1876 |
1411 |
/// The key type of DescriptorMap (Node, Arc, Edge).
|
| 1877 |
1412 |
typedef typename Map::Key Key;
|
| 1878 |
1413 |
/// The value type of DescriptorMap.
|
| 1879 |
1414 |
typedef typename Map::Value Value;
|
| 1880 |
1415 |
|
| 1881 |
1416 |
/// \brief Constructor.
|
| 1882 |
1417 |
///
|
| 1883 |
1418 |
/// Constructor for descriptor map.
|
| 1884 |
|
explicit DescriptorMap(const Digraph& _digraph) : Map(_digraph) {
|
|
1419 |
explicit DescriptorMap(const Graph& _graph) : Map(_graph) {
|
| 1885 |
1420 |
Item it;
|
| 1886 |
1421 |
const typename Map::Notifier* nf = Map::notifier();
|
| 1887 |
1422 |
for (nf->first(it); it != INVALID; nf->next(it)) {
|
| 1888 |
|
Map::set(it, invMap.size());
|
| 1889 |
|
invMap.push_back(it);
|
|
1423 |
Map::set(it, _inv_map.size());
|
|
1424 |
_inv_map.push_back(it);
|
| 1890 |
1425 |
}
|
| 1891 |
1426 |
}
|
| 1892 |
1427 |
|
| 1893 |
1428 |
protected:
|
| 1894 |
1429 |
|
| 1895 |
1430 |
/// \brief Add a new key to the map.
|
| 1896 |
1431 |
///
|
| 1897 |
1432 |
/// Add a new key to the map. It is called by the
|
| 1898 |
1433 |
/// \c AlterationNotifier.
|
| 1899 |
1434 |
virtual void add(const Item& item) {
|
| 1900 |
1435 |
Map::add(item);
|
| 1901 |
|
Map::set(item, invMap.size());
|
| 1902 |
|
invMap.push_back(item);
|
|
1436 |
Map::set(item, _inv_map.size());
|
|
1437 |
_inv_map.push_back(item);
|
| 1903 |
1438 |
}
|
| 1904 |
1439 |
|
| 1905 |
1440 |
/// \brief Add more new keys to the map.
|
| 1906 |
1441 |
///
|
| 1907 |
1442 |
/// Add more new keys to the map. It is called by the
|
| 1908 |
1443 |
/// \c AlterationNotifier.
|
| 1909 |
1444 |
virtual void add(const std::vector<Item>& items) {
|
| 1910 |
1445 |
Map::add(items);
|
| 1911 |
1446 |
for (int i = 0; i < int(items.size()); ++i) {
|
| 1912 |
|
Map::set(items[i], invMap.size());
|
| 1913 |
|
invMap.push_back(items[i]);
|
|
1447 |
Map::set(items[i], _inv_map.size());
|
|
1448 |
_inv_map.push_back(items[i]);
|
| 1914 |
1449 |
}
|
| 1915 |
1450 |
}
|
| 1916 |
1451 |
|
| 1917 |
1452 |
/// \brief Erase the key from the map.
|
| 1918 |
1453 |
///
|
| 1919 |
1454 |
/// Erase the key from the map. It is called by the
|
| 1920 |
1455 |
/// \c AlterationNotifier.
|
| 1921 |
1456 |
virtual void erase(const Item& item) {
|
| 1922 |
|
Map::set(invMap.back(), Map::operator[](item));
|
| 1923 |
|
invMap[Map::operator[](item)] = invMap.back();
|
| 1924 |
|
invMap.pop_back();
|
|
1457 |
Map::set(_inv_map.back(), Map::operator[](item));
|
|
1458 |
_inv_map[Map::operator[](item)] = _inv_map.back();
|
|
1459 |
_inv_map.pop_back();
|
| 1925 |
1460 |
Map::erase(item);
|
| 1926 |
1461 |
}
|
| 1927 |
1462 |
|
| 1928 |
1463 |
/// \brief Erase more keys from the map.
|
| 1929 |
1464 |
///
|
| 1930 |
1465 |
/// Erase more keys from the map. It is called by the
|
| 1931 |
1466 |
/// \c AlterationNotifier.
|
| 1932 |
1467 |
virtual void erase(const std::vector<Item>& items) {
|
| 1933 |
1468 |
for (int i = 0; i < int(items.size()); ++i) {
|
| 1934 |
|
Map::set(invMap.back(), Map::operator[](items[i]));
|
| 1935 |
|
invMap[Map::operator[](items[i])] = invMap.back();
|
| 1936 |
|
invMap.pop_back();
|
|
1469 |
Map::set(_inv_map.back(), Map::operator[](items[i]));
|
|
1470 |
_inv_map[Map::operator[](items[i])] = _inv_map.back();
|
|
1471 |
_inv_map.pop_back();
|
| 1937 |
1472 |
}
|
| 1938 |
1473 |
Map::erase(items);
|
| 1939 |
1474 |
}
|
| 1940 |
1475 |
|
| 1941 |
1476 |
/// \brief Build the unique map.
|
| 1942 |
1477 |
///
|
| 1943 |
1478 |
/// Build the unique map. It is called by the
|
| 1944 |
1479 |
/// \c AlterationNotifier.
|
| 1945 |
1480 |
virtual void build() {
|
| 1946 |
1481 |
Map::build();
|
| 1947 |
1482 |
Item it;
|
| 1948 |
1483 |
const typename Map::Notifier* nf = Map::notifier();
|
| 1949 |
1484 |
for (nf->first(it); it != INVALID; nf->next(it)) {
|
| 1950 |
|
Map::set(it, invMap.size());
|
| 1951 |
|
invMap.push_back(it);
|
|
1485 |
Map::set(it, _inv_map.size());
|
|
1486 |
_inv_map.push_back(it);
|
| 1952 |
1487 |
}
|
| 1953 |
1488 |
}
|
| 1954 |
1489 |
|
| 1955 |
1490 |
/// \brief Clear the keys from the map.
|
| 1956 |
1491 |
///
|
| 1957 |
1492 |
/// Clear the keys from the map. It is called by the
|
| 1958 |
1493 |
/// \c AlterationNotifier.
|
| 1959 |
1494 |
virtual void clear() {
|
| 1960 |
|
invMap.clear();
|
|
1495 |
_inv_map.clear();
|
| 1961 |
1496 |
Map::clear();
|
| 1962 |
1497 |
}
|
| 1963 |
1498 |
|
| 1964 |
1499 |
public:
|
| 1965 |
1500 |
|
| 1966 |
1501 |
/// \brief Returns the maximal value plus one.
|
| 1967 |
1502 |
///
|
| 1968 |
1503 |
/// Returns the maximal value plus one in the map.
|
| 1969 |
1504 |
unsigned int size() const {
|
| 1970 |
|
return invMap.size();
|
|
1505 |
return _inv_map.size();
|
| 1971 |
1506 |
}
|
| 1972 |
1507 |
|
| 1973 |
1508 |
/// \brief Swaps the position of the two items in the map.
|
| 1974 |
1509 |
///
|
| 1975 |
1510 |
/// Swaps the position of the two items in the map.
|
| 1976 |
1511 |
void swap(const Item& p, const Item& q) {
|
| 1977 |
1512 |
int pi = Map::operator[](p);
|
| 1978 |
1513 |
int qi = Map::operator[](q);
|
| 1979 |
1514 |
Map::set(p, qi);
|
| 1980 |
|
invMap[qi] = p;
|
|
1515 |
_inv_map[qi] = p;
|
| 1981 |
1516 |
Map::set(q, pi);
|
| 1982 |
|
invMap[pi] = q;
|
|
1517 |
_inv_map[pi] = q;
|
| 1983 |
1518 |
}
|
| 1984 |
1519 |
|
| 1985 |
1520 |
/// \brief Gives back the \e descriptor of the item.
|
| 1986 |
1521 |
///
|
| 1987 |
1522 |
/// Gives back the mutable and unique \e descriptor of the map.
|
| 1988 |
1523 |
int operator[](const Item& item) const {
|
| 1989 |
1524 |
return Map::operator[](item);
|
| 1990 |
1525 |
}
|
| 1991 |
1526 |
|
| 1992 |
1527 |
/// \brief Gives back the item by its descriptor.
|
| 1993 |
1528 |
///
|
| 1994 |
1529 |
/// Gives back th item by its descriptor.
|
| 1995 |
1530 |
Item operator()(int id) const {
|
| 1996 |
|
return invMap[id];
|
|
1531 |
return _inv_map[id];
|
| 1997 |
1532 |
}
|
| 1998 |
1533 |
|
| 1999 |
1534 |
private:
|
| 2000 |
1535 |
|
| 2001 |
1536 |
typedef std::vector<Item> Container;
|
| 2002 |
|
Container invMap;
|
|
1537 |
Container _inv_map;
|
| 2003 |
1538 |
|
| 2004 |
1539 |
public:
|
| 2005 |
1540 |
/// \brief The inverse map type of DescriptorMap.
|
| 2006 |
1541 |
///
|
| 2007 |
1542 |
/// The inverse map type of DescriptorMap.
|
| 2008 |
1543 |
class InverseMap {
|
| 2009 |
1544 |
public:
|
| 2010 |
1545 |
/// \brief Constructor of the InverseMap.
|
| 2011 |
1546 |
///
|
| 2012 |
1547 |
/// Constructor of the InverseMap.
|
| 2013 |
|
explicit InverseMap(const DescriptorMap& _inverted)
|
| 2014 |
|
: inverted(_inverted) {}
|
|
1548 |
explicit InverseMap(const DescriptorMap& inverted)
|
|
1549 |
: _inverted(inverted) {}
|
| 2015 |
1550 |
|
| 2016 |
1551 |
|
| 2017 |
1552 |
/// The value type of the InverseMap.
|
| 2018 |
1553 |
typedef typename DescriptorMap::Key Value;
|
| 2019 |
1554 |
/// The key type of the InverseMap.
|
| 2020 |
1555 |
typedef typename DescriptorMap::Value Key;
|
| 2021 |
1556 |
|
| 2022 |
1557 |
/// \brief Subscript operator.
|
| 2023 |
1558 |
///
|
| 2024 |
1559 |
/// Subscript operator. It gives back the item
|
| 2025 |
1560 |
/// that the descriptor belongs to currently.
|
| 2026 |
1561 |
Value operator[](const Key& key) const {
|
| 2027 |
|
return inverted(key);
|
|
1562 |
return _inverted(key);
|
| 2028 |
1563 |
}
|
| 2029 |
1564 |
|
| 2030 |
1565 |
/// \brief Size of the map.
|
| 2031 |
1566 |
///
|
| 2032 |
1567 |
/// Returns the size of the map.
|
| 2033 |
1568 |
unsigned int size() const {
|
| 2034 |
|
return inverted.size();
|
|
1569 |
return _inverted.size();
|
| 2035 |
1570 |
}
|
| 2036 |
1571 |
|
| 2037 |
1572 |
private:
|
| 2038 |
|
const DescriptorMap& inverted;
|
|
1573 |
const DescriptorMap& _inverted;
|
| 2039 |
1574 |
};
|
| 2040 |
1575 |
|
| 2041 |
1576 |
/// \brief Gives back the inverse of the map.
|
| 2042 |
1577 |
///
|
| 2043 |
1578 |
/// Gives back the inverse of the map.
|
| 2044 |
1579 |
const InverseMap inverse() const {
|
| 2045 |
1580 |
return InverseMap(*this);
|
| 2046 |
1581 |
}
|
| 2047 |
1582 |
};
|
| 2048 |
1583 |
|
| 2049 |
1584 |
/// \brief Returns the source of the given arc.
|
| 2050 |
1585 |
///
|
| ... |
... |
@@ -2053,37 +1588,37 @@
|
| 2053 |
1588 |
/// \author Balazs Dezso
|
| 2054 |
1589 |
template <typename Digraph>
|
| 2055 |
1590 |
class SourceMap {
|
| 2056 |
1591 |
public:
|
| 2057 |
1592 |
|
| 2058 |
1593 |
typedef typename Digraph::Node Value;
|
| 2059 |
1594 |
typedef typename Digraph::Arc Key;
|
| 2060 |
1595 |
|
| 2061 |
1596 |
/// \brief Constructor
|
| 2062 |
1597 |
///
|
| 2063 |
1598 |
/// Constructor
|
| 2064 |
1599 |
/// \param _digraph The digraph that the map belongs to.
|
| 2065 |
|
explicit SourceMap(const Digraph& _digraph) : digraph(_digraph) {}
|
|
1600 |
explicit SourceMap(const Digraph& digraph) : _digraph(digraph) {}
|
| 2066 |
1601 |
|
| 2067 |
1602 |
/// \brief The subscript operator.
|
| 2068 |
1603 |
///
|
| 2069 |
1604 |
/// The subscript operator.
|
| 2070 |
1605 |
/// \param arc The arc
|
| 2071 |
1606 |
/// \return The source of the arc
|
| 2072 |
1607 |
Value operator[](const Key& arc) const {
|
| 2073 |
|
return digraph.source(arc);
|
|
1608 |
return _digraph.source(arc);
|
| 2074 |
1609 |
}
|
| 2075 |
1610 |
|
| 2076 |
1611 |
private:
|
| 2077 |
|
const Digraph& digraph;
|
|
1612 |
const Digraph& _digraph;
|
| 2078 |
1613 |
};
|
| 2079 |
1614 |
|
| 2080 |
1615 |
/// \brief Returns a \ref SourceMap class.
|
| 2081 |
1616 |
///
|
| 2082 |
1617 |
/// This function just returns an \ref SourceMap class.
|
| 2083 |
1618 |
/// \relates SourceMap
|
| 2084 |
1619 |
template <typename Digraph>
|
| 2085 |
1620 |
inline SourceMap<Digraph> sourceMap(const Digraph& digraph) {
|
| 2086 |
1621 |
return SourceMap<Digraph>(digraph);
|
| 2087 |
1622 |
}
|
| 2088 |
1623 |
|
| 2089 |
1624 |
/// \brief Returns the target of the given arc.
|
| ... |
... |
@@ -2093,156 +1628,157 @@
|
| 2093 |
1628 |
/// \author Balazs Dezso
|
| 2094 |
1629 |
template <typename Digraph>
|
| 2095 |
1630 |
class TargetMap {
|
| 2096 |
1631 |
public:
|
| 2097 |
1632 |
|
| 2098 |
1633 |
typedef typename Digraph::Node Value;
|
| 2099 |
1634 |
typedef typename Digraph::Arc Key;
|
| 2100 |
1635 |
|
| 2101 |
1636 |
/// \brief Constructor
|
| 2102 |
1637 |
///
|
| 2103 |
1638 |
/// Constructor
|
| 2104 |
1639 |
/// \param _digraph The digraph that the map belongs to.
|
| 2105 |
|
explicit TargetMap(const Digraph& _digraph) : digraph(_digraph) {}
|
|
1640 |
explicit TargetMap(const Digraph& digraph) : _digraph(digraph) {}
|
| 2106 |
1641 |
|
| 2107 |
1642 |
/// \brief The subscript operator.
|
| 2108 |
1643 |
///
|
| 2109 |
1644 |
/// The subscript operator.
|
| 2110 |
1645 |
/// \param e The arc
|
| 2111 |
1646 |
/// \return The target of the arc
|
| 2112 |
1647 |
Value operator[](const Key& e) const {
|
| 2113 |
|
return digraph.target(e);
|
|
1648 |
return _digraph.target(e);
|
| 2114 |
1649 |
}
|
| 2115 |
1650 |
|
| 2116 |
1651 |
private:
|
| 2117 |
|
const Digraph& digraph;
|
|
1652 |
const Digraph& _digraph;
|
| 2118 |
1653 |
};
|
| 2119 |
1654 |
|
| 2120 |
1655 |
/// \brief Returns a \ref TargetMap class.
|
| 2121 |
1656 |
///
|
| 2122 |
1657 |
/// This function just returns a \ref TargetMap class.
|
| 2123 |
1658 |
/// \relates TargetMap
|
| 2124 |
1659 |
template <typename Digraph>
|
| 2125 |
1660 |
inline TargetMap<Digraph> targetMap(const Digraph& digraph) {
|
| 2126 |
1661 |
return TargetMap<Digraph>(digraph);
|
| 2127 |
1662 |
}
|
| 2128 |
1663 |
|
| 2129 |
1664 |
/// \brief Returns the "forward" directed arc view of an edge.
|
| 2130 |
1665 |
///
|
| 2131 |
1666 |
/// Returns the "forward" directed arc view of an edge.
|
| 2132 |
1667 |
/// \see BackwardMap
|
| 2133 |
1668 |
/// \author Balazs Dezso
|
| 2134 |
|
template <typename Digraph>
|
|
1669 |
template <typename Graph>
|
| 2135 |
1670 |
class ForwardMap {
|
| 2136 |
1671 |
public:
|
| 2137 |
1672 |
|
| 2138 |
|
typedef typename Digraph::Arc Value;
|
| 2139 |
|
typedef typename Digraph::Edge Key;
|
|
1673 |
typedef typename Graph::Arc Value;
|
|
1674 |
typedef typename Graph::Edge Key;
|
| 2140 |
1675 |
|
| 2141 |
1676 |
/// \brief Constructor
|
| 2142 |
1677 |
///
|
| 2143 |
1678 |
/// Constructor
|
| 2144 |
|
/// \param _digraph The digraph that the map belongs to.
|
| 2145 |
|
explicit ForwardMap(const Digraph& _digraph) : digraph(_digraph) {}
|
|
1679 |
/// \param _graph The graph that the map belongs to.
|
|
1680 |
explicit ForwardMap(const Graph& graph) : _graph(graph) {}
|
| 2146 |
1681 |
|
| 2147 |
1682 |
/// \brief The subscript operator.
|
| 2148 |
1683 |
///
|
| 2149 |
1684 |
/// The subscript operator.
|
| 2150 |
1685 |
/// \param key An edge
|
| 2151 |
1686 |
/// \return The "forward" directed arc view of edge
|
| 2152 |
1687 |
Value operator[](const Key& key) const {
|
| 2153 |
|
return digraph.direct(key, true);
|
|
1688 |
return _graph.direct(key, true);
|
| 2154 |
1689 |
}
|
| 2155 |
1690 |
|
| 2156 |
1691 |
private:
|
| 2157 |
|
const Digraph& digraph;
|
|
1692 |
const Graph& _graph;
|
| 2158 |
1693 |
};
|
| 2159 |
1694 |
|
| 2160 |
1695 |
/// \brief Returns a \ref ForwardMap class.
|
| 2161 |
1696 |
///
|
| 2162 |
1697 |
/// This function just returns an \ref ForwardMap class.
|
| 2163 |
1698 |
/// \relates ForwardMap
|
| 2164 |
|
template <typename Digraph>
|
| 2165 |
|
inline ForwardMap<Digraph> forwardMap(const Digraph& digraph) {
|
| 2166 |
|
return ForwardMap<Digraph>(digraph);
|
|
1699 |
template <typename Graph>
|
|
1700 |
inline ForwardMap<Graph> forwardMap(const Graph& graph) {
|
|
1701 |
return ForwardMap<Graph>(graph);
|
| 2167 |
1702 |
}
|
| 2168 |
1703 |
|
| 2169 |
1704 |
/// \brief Returns the "backward" directed arc view of an edge.
|
| 2170 |
1705 |
///
|
| 2171 |
1706 |
/// Returns the "backward" directed arc view of an edge.
|
| 2172 |
1707 |
/// \see ForwardMap
|
| 2173 |
1708 |
/// \author Balazs Dezso
|
| 2174 |
|
template <typename Digraph>
|
|
1709 |
template <typename Graph>
|
| 2175 |
1710 |
class BackwardMap {
|
| 2176 |
1711 |
public:
|
| 2177 |
1712 |
|
| 2178 |
|
typedef typename Digraph::Arc Value;
|
| 2179 |
|
typedef typename Digraph::Edge Key;
|
|
1713 |
typedef typename Graph::Arc Value;
|
|
1714 |
typedef typename Graph::Edge Key;
|
| 2180 |
1715 |
|
| 2181 |
1716 |
/// \brief Constructor
|
| 2182 |
1717 |
///
|
| 2183 |
1718 |
/// Constructor
|
| 2184 |
|
/// \param _digraph The digraph that the map belongs to.
|
| 2185 |
|
explicit BackwardMap(const Digraph& _digraph) : digraph(_digraph) {}
|
|
1719 |
/// \param _graph The graph that the map belongs to.
|
|
1720 |
explicit BackwardMap(const Graph& graph) : _graph(graph) {}
|
| 2186 |
1721 |
|
| 2187 |
1722 |
/// \brief The subscript operator.
|
| 2188 |
1723 |
///
|
| 2189 |
1724 |
/// The subscript operator.
|
| 2190 |
1725 |
/// \param key An edge
|
| 2191 |
1726 |
/// \return The "backward" directed arc view of edge
|
| 2192 |
1727 |
Value operator[](const Key& key) const {
|
| 2193 |
|
return digraph.direct(key, false);
|
|
1728 |
return _graph.direct(key, false);
|
| 2194 |
1729 |
}
|
| 2195 |
1730 |
|
| 2196 |
1731 |
private:
|
| 2197 |
|
const Digraph& digraph;
|
|
1732 |
const Graph& _graph;
|
| 2198 |
1733 |
};
|
| 2199 |
1734 |
|
| 2200 |
1735 |
/// \brief Returns a \ref BackwardMap class
|
| 2201 |
1736 |
|
| 2202 |
1737 |
/// This function just returns a \ref BackwardMap class.
|
| 2203 |
1738 |
/// \relates BackwardMap
|
| 2204 |
|
template <typename Digraph>
|
| 2205 |
|
inline BackwardMap<Digraph> backwardMap(const Digraph& digraph) {
|
| 2206 |
|
return BackwardMap<Digraph>(digraph);
|
|
1739 |
template <typename Graph>
|
|
1740 |
inline BackwardMap<Graph> backwardMap(const Graph& graph) {
|
|
1741 |
return BackwardMap<Graph>(graph);
|
| 2207 |
1742 |
}
|
| 2208 |
1743 |
|
| 2209 |
1744 |
/// \brief Potential difference map
|
| 2210 |
1745 |
///
|
| 2211 |
1746 |
/// If there is an potential map on the nodes then we
|
| 2212 |
1747 |
/// can get an arc map as we get the substraction of the
|
| 2213 |
1748 |
/// values of the target and source.
|
| 2214 |
1749 |
template <typename Digraph, typename NodeMap>
|
| 2215 |
1750 |
class PotentialDifferenceMap {
|
| 2216 |
1751 |
public:
|
| 2217 |
1752 |
typedef typename Digraph::Arc Key;
|
| 2218 |
1753 |
typedef typename NodeMap::Value Value;
|
| 2219 |
1754 |
|
| 2220 |
1755 |
/// \brief Constructor
|
| 2221 |
1756 |
///
|
| 2222 |
1757 |
/// Contructor of the map
|
| 2223 |
|
explicit PotentialDifferenceMap(const Digraph& _digraph,
|
| 2224 |
|
const NodeMap& _potential)
|
| 2225 |
|
: digraph(_digraph), potential(_potential) {}
|
|
1758 |
explicit PotentialDifferenceMap(const Digraph& digraph,
|
|
1759 |
const NodeMap& potential)
|
|
1760 |
: _digraph(digraph), _potential(potential) {}
|
| 2226 |
1761 |
|
| 2227 |
1762 |
/// \brief Const subscription operator
|
| 2228 |
1763 |
///
|
| 2229 |
1764 |
/// Const subscription operator
|
| 2230 |
1765 |
Value operator[](const Key& arc) const {
|
| 2231 |
|
return potential[digraph.target(arc)] - potential[digraph.source(arc)];
|
|
1766 |
return _potential[_digraph.target(arc)] -
|
|
1767 |
_potential[_digraph.source(arc)];
|
| 2232 |
1768 |
}
|
| 2233 |
1769 |
|
| 2234 |
1770 |
private:
|
| 2235 |
|
const Digraph& digraph;
|
| 2236 |
|
const NodeMap& potential;
|
|
1771 |
const Digraph& _digraph;
|
|
1772 |
const NodeMap& _potential;
|
| 2237 |
1773 |
};
|
| 2238 |
1774 |
|
| 2239 |
1775 |
/// \brief Returns a PotentialDifferenceMap.
|
| 2240 |
1776 |
///
|
| 2241 |
1777 |
/// This function just returns a PotentialDifferenceMap.
|
| 2242 |
1778 |
/// \relates PotentialDifferenceMap
|
| 2243 |
1779 |
template <typename Digraph, typename NodeMap>
|
| 2244 |
1780 |
PotentialDifferenceMap<Digraph, NodeMap>
|
| 2245 |
1781 |
potentialDifferenceMap(const Digraph& digraph, const NodeMap& potential) {
|
| 2246 |
1782 |
return PotentialDifferenceMap<Digraph, NodeMap>(digraph, potential);
|
| 2247 |
1783 |
}
|
| 2248 |
1784 |
|
| ... |
... |
@@ -2265,34 +1801,33 @@
|
| 2265 |
1801 |
|
| 2266 |
1802 |
template <typename _Digraph>
|
| 2267 |
1803 |
class InDegMap
|
| 2268 |
1804 |
: protected ItemSetTraits<_Digraph, typename _Digraph::Arc>
|
| 2269 |
1805 |
::ItemNotifier::ObserverBase {
|
| 2270 |
1806 |
|
| 2271 |
1807 |
public:
|
| 2272 |
1808 |
|
| 2273 |
1809 |
typedef _Digraph Digraph;
|
| 2274 |
1810 |
typedef int Value;
|
| 2275 |
1811 |
typedef typename Digraph::Node Key;
|
| 2276 |
1812 |
|
| 2277 |
|
typedef typename ItemSetTraits<_Digraph, typename _Digraph::Arc>
|
|
1813 |
typedef typename ItemSetTraits<Digraph, typename Digraph::Arc>
|
| 2278 |
1814 |
::ItemNotifier::ObserverBase Parent;
|
| 2279 |
1815 |
|
| 2280 |
1816 |
private:
|
| 2281 |
1817 |
|
| 2282 |
|
class AutoNodeMap : public DefaultMap<_Digraph, Key, int> {
|
|
1818 |
class AutoNodeMap : public DefaultMap<Digraph, Key, int> {
|
| 2283 |
1819 |
public:
|
| 2284 |
1820 |
|
| 2285 |
|
typedef DefaultMap<_Digraph, Key, int> Parent;
|
| 2286 |
|
typedef typename Parent::Digraph Digraph;
|
|
1821 |
typedef DefaultMap<Digraph, Key, int> Parent;
|
| 2287 |
1822 |
|
| 2288 |
1823 |
AutoNodeMap(const Digraph& digraph) : Parent(digraph, 0) {}
|
| 2289 |
1824 |
|
| 2290 |
1825 |
virtual void add(const Key& key) {
|
| 2291 |
1826 |
Parent::add(key);
|
| 2292 |
1827 |
Parent::set(key, 0);
|
| 2293 |
1828 |
}
|
| 2294 |
1829 |
|
| 2295 |
1830 |
virtual void add(const std::vector<Key>& keys) {
|
| 2296 |
1831 |
Parent::add(keys);
|
| 2297 |
1832 |
for (int i = 0; i < int(keys.size()); ++i) {
|
| 2298 |
1833 |
Parent::set(keys[i], 0);
|
| ... |
... |
@@ -2305,76 +1840,77 @@
|
| 2305 |
1840 |
typename Parent::Notifier* nf = Parent::notifier();
|
| 2306 |
1841 |
for (nf->first(it); it != INVALID; nf->next(it)) {
|
| 2307 |
1842 |
Parent::set(it, 0);
|
| 2308 |
1843 |
}
|
| 2309 |
1844 |
}
|
| 2310 |
1845 |
};
|
| 2311 |
1846 |
|
| 2312 |
1847 |
public:
|
| 2313 |
1848 |
|
| 2314 |
1849 |
/// \brief Constructor.
|
| 2315 |
1850 |
///
|
| 2316 |
1851 |
/// Constructor for creating in-degree map.
|
| 2317 |
|
explicit InDegMap(const Digraph& _digraph) : digraph(_digraph), deg(_digraph) {
|
| 2318 |
|
Parent::attach(digraph.notifier(typename _Digraph::Arc()));
|
| 2319 |
|
|
| 2320 |
|
for(typename _Digraph::NodeIt it(digraph); it != INVALID; ++it) {
|
| 2321 |
|
deg[it] = countInArcs(digraph, it);
|
|
1852 |
explicit InDegMap(const Digraph& digraph)
|
|
1853 |
: _digraph(digraph), _deg(digraph) {
|
|
1854 |
Parent::attach(_digraph.notifier(typename Digraph::Arc()));
|
|
1855 |
|
|
1856 |
for(typename Digraph::NodeIt it(_digraph); it != INVALID; ++it) {
|
|
1857 |
_deg[it] = countInArcs(_digraph, it);
|
| 2322 |
1858 |
}
|
| 2323 |
1859 |
}
|
| 2324 |
1860 |
|
| 2325 |
1861 |
/// Gives back the in-degree of a Node.
|
| 2326 |
1862 |
int operator[](const Key& key) const {
|
| 2327 |
|
return deg[key];
|
|
1863 |
return _deg[key];
|
| 2328 |
1864 |
}
|
| 2329 |
1865 |
|
| 2330 |
1866 |
protected:
|
| 2331 |
1867 |
|
| 2332 |
1868 |
typedef typename Digraph::Arc Arc;
|
| 2333 |
1869 |
|
| 2334 |
1870 |
virtual void add(const Arc& arc) {
|
| 2335 |
|
++deg[digraph.target(arc)];
|
|
1871 |
++_deg[_digraph.target(arc)];
|
| 2336 |
1872 |
}
|
| 2337 |
1873 |
|
| 2338 |
1874 |
virtual void add(const std::vector<Arc>& arcs) {
|
| 2339 |
1875 |
for (int i = 0; i < int(arcs.size()); ++i) {
|
| 2340 |
|
++deg[digraph.target(arcs[i])];
|
|
1876 |
++_deg[_digraph.target(arcs[i])];
|
| 2341 |
1877 |
}
|
| 2342 |
1878 |
}
|
| 2343 |
1879 |
|
| 2344 |
1880 |
virtual void erase(const Arc& arc) {
|
| 2345 |
|
--deg[digraph.target(arc)];
|
|
1881 |
--_deg[_digraph.target(arc)];
|
| 2346 |
1882 |
}
|
| 2347 |
1883 |
|
| 2348 |
1884 |
virtual void erase(const std::vector<Arc>& arcs) {
|
| 2349 |
1885 |
for (int i = 0; i < int(arcs.size()); ++i) {
|
| 2350 |
|
--deg[digraph.target(arcs[i])];
|
|
1886 |
--_deg[_digraph.target(arcs[i])];
|
| 2351 |
1887 |
}
|
| 2352 |
1888 |
}
|
| 2353 |
1889 |
|
| 2354 |
1890 |
virtual void build() {
|
| 2355 |
|
for(typename _Digraph::NodeIt it(digraph); it != INVALID; ++it) {
|
| 2356 |
|
deg[it] = countInArcs(digraph, it);
|
|
1891 |
for(typename Digraph::NodeIt it(_digraph); it != INVALID; ++it) {
|
|
1892 |
_deg[it] = countInArcs(_digraph, it);
|
| 2357 |
1893 |
}
|
| 2358 |
1894 |
}
|
| 2359 |
1895 |
|
| 2360 |
1896 |
virtual void clear() {
|
| 2361 |
|
for(typename _Digraph::NodeIt it(digraph); it != INVALID; ++it) {
|
| 2362 |
|
deg[it] = 0;
|
|
1897 |
for(typename Digraph::NodeIt it(_digraph); it != INVALID; ++it) {
|
|
1898 |
_deg[it] = 0;
|
| 2363 |
1899 |
}
|
| 2364 |
1900 |
}
|
| 2365 |
1901 |
private:
|
| 2366 |
1902 |
|
| 2367 |
|
const _Digraph& digraph;
|
| 2368 |
|
AutoNodeMap deg;
|
|
1903 |
const Digraph& _digraph;
|
|
1904 |
AutoNodeMap _deg;
|
| 2369 |
1905 |
};
|
| 2370 |
1906 |
|
| 2371 |
1907 |
/// \brief Map of the node out-degrees.
|
| 2372 |
1908 |
///
|
| 2373 |
1909 |
/// This map returns the out-degree of a node. Once it is constructed,
|
| 2374 |
1910 |
/// the degrees are stored in a standard NodeMap, so each query is done
|
| 2375 |
1911 |
/// in constant time. On the other hand, the values are updated automatically
|
| 2376 |
1912 |
/// whenever the digraph changes.
|
| 2377 |
1913 |
///
|
| 2378 |
1914 |
/// \warning Besides addNode() and addArc(), a digraph structure may provide
|
| 2379 |
1915 |
/// alternative ways to modify the digraph. The correct behavior of OutDegMap
|
| 2380 |
1916 |
/// is not guarantied if these additional features are used. For example
|
| ... |
... |
@@ -2383,38 +1919,37 @@
|
| 2383 |
1919 |
/// \ref ListDigraph::reverseArc() "reverseArc()"
|
| 2384 |
1920 |
/// of \ref ListDigraph will \e not update the degree values correctly.
|
| 2385 |
1921 |
///
|
| 2386 |
1922 |
/// \sa InDegMap
|
| 2387 |
1923 |
|
| 2388 |
1924 |
template <typename _Digraph>
|
| 2389 |
1925 |
class OutDegMap
|
| 2390 |
1926 |
: protected ItemSetTraits<_Digraph, typename _Digraph::Arc>
|
| 2391 |
1927 |
::ItemNotifier::ObserverBase {
|
| 2392 |
1928 |
|
| 2393 |
1929 |
public:
|
| 2394 |
1930 |
|
| 2395 |
|
typedef typename ItemSetTraits<_Digraph, typename _Digraph::Arc>
|
| 2396 |
|
::ItemNotifier::ObserverBase Parent;
|
| 2397 |
|
|
| 2398 |
1931 |
typedef _Digraph Digraph;
|
| 2399 |
1932 |
typedef int Value;
|
| 2400 |
1933 |
typedef typename Digraph::Node Key;
|
| 2401 |
1934 |
|
|
1935 |
typedef typename ItemSetTraits<Digraph, typename Digraph::Arc>
|
|
1936 |
::ItemNotifier::ObserverBase Parent;
|
|
1937 |
|
| 2402 |
1938 |
private:
|
| 2403 |
1939 |
|
| 2404 |
|
class AutoNodeMap : public DefaultMap<_Digraph, Key, int> {
|
|
1940 |
class AutoNodeMap : public DefaultMap<Digraph, Key, int> {
|
| 2405 |
1941 |
public:
|
| 2406 |
1942 |
|
| 2407 |
|
typedef DefaultMap<_Digraph, Key, int> Parent;
|
| 2408 |
|
typedef typename Parent::Digraph Digraph;
|
|
1943 |
typedef DefaultMap<Digraph, Key, int> Parent;
|
| 2409 |
1944 |
|
| 2410 |
1945 |
AutoNodeMap(const Digraph& digraph) : Parent(digraph, 0) {}
|
| 2411 |
1946 |
|
| 2412 |
1947 |
virtual void add(const Key& key) {
|
| 2413 |
1948 |
Parent::add(key);
|
| 2414 |
1949 |
Parent::set(key, 0);
|
| 2415 |
1950 |
}
|
| 2416 |
1951 |
virtual void add(const std::vector<Key>& keys) {
|
| 2417 |
1952 |
Parent::add(keys);
|
| 2418 |
1953 |
for (int i = 0; i < int(keys.size()); ++i) {
|
| 2419 |
1954 |
Parent::set(keys[i], 0);
|
| 2420 |
1955 |
}
|
| ... |
... |
@@ -2425,111 +1960,112 @@
|
| 2425 |
1960 |
typename Parent::Notifier* nf = Parent::notifier();
|
| 2426 |
1961 |
for (nf->first(it); it != INVALID; nf->next(it)) {
|
| 2427 |
1962 |
Parent::set(it, 0);
|
| 2428 |
1963 |
}
|
| 2429 |
1964 |
}
|
| 2430 |
1965 |
};
|
| 2431 |
1966 |
|
| 2432 |
1967 |
public:
|
| 2433 |
1968 |
|
| 2434 |
1969 |
/// \brief Constructor.
|
| 2435 |
1970 |
///
|
| 2436 |
1971 |
/// Constructor for creating out-degree map.
|
| 2437 |
|
explicit OutDegMap(const Digraph& _digraph) : digraph(_digraph), deg(_digraph) {
|
| 2438 |
|
Parent::attach(digraph.notifier(typename _Digraph::Arc()));
|
| 2439 |
|
|
| 2440 |
|
for(typename _Digraph::NodeIt it(digraph); it != INVALID; ++it) {
|
| 2441 |
|
deg[it] = countOutArcs(digraph, it);
|
|
1972 |
explicit OutDegMap(const Digraph& digraph)
|
|
1973 |
: _digraph(digraph), _deg(digraph) {
|
|
1974 |
Parent::attach(_digraph.notifier(typename Digraph::Arc()));
|
|
1975 |
|
|
1976 |
for(typename Digraph::NodeIt it(_digraph); it != INVALID; ++it) {
|
|
1977 |
_deg[it] = countOutArcs(_digraph, it);
|
| 2442 |
1978 |
}
|
| 2443 |
1979 |
}
|
| 2444 |
1980 |
|
| 2445 |
1981 |
/// Gives back the out-degree of a Node.
|
| 2446 |
1982 |
int operator[](const Key& key) const {
|
| 2447 |
|
return deg[key];
|
|
1983 |
return _deg[key];
|
| 2448 |
1984 |
}
|
| 2449 |
1985 |
|
| 2450 |
1986 |
protected:
|
| 2451 |
1987 |
|
| 2452 |
1988 |
typedef typename Digraph::Arc Arc;
|
| 2453 |
1989 |
|
| 2454 |
1990 |
virtual void add(const Arc& arc) {
|
| 2455 |
|
++deg[digraph.source(arc)];
|
|
1991 |
++_deg[_digraph.source(arc)];
|
| 2456 |
1992 |
}
|
| 2457 |
1993 |
|
| 2458 |
1994 |
virtual void add(const std::vector<Arc>& arcs) {
|
| 2459 |
1995 |
for (int i = 0; i < int(arcs.size()); ++i) {
|
| 2460 |
|
++deg[digraph.source(arcs[i])];
|
|
1996 |
++_deg[_digraph.source(arcs[i])];
|
| 2461 |
1997 |
}
|
| 2462 |
1998 |
}
|
| 2463 |
1999 |
|
| 2464 |
2000 |
virtual void erase(const Arc& arc) {
|
| 2465 |
|
--deg[digraph.source(arc)];
|
|
2001 |
--_deg[_digraph.source(arc)];
|
| 2466 |
2002 |
}
|
| 2467 |
2003 |
|
| 2468 |
2004 |
virtual void erase(const std::vector<Arc>& arcs) {
|
| 2469 |
2005 |
for (int i = 0; i < int(arcs.size()); ++i) {
|
| 2470 |
|
--deg[digraph.source(arcs[i])];
|
|
2006 |
--_deg[_digraph.source(arcs[i])];
|
| 2471 |
2007 |
}
|
| 2472 |
2008 |
}
|
| 2473 |
2009 |
|
| 2474 |
2010 |
virtual void build() {
|
| 2475 |
|
for(typename _Digraph::NodeIt it(digraph); it != INVALID; ++it) {
|
| 2476 |
|
deg[it] = countOutArcs(digraph, it);
|
|
2011 |
for(typename Digraph::NodeIt it(_digraph); it != INVALID; ++it) {
|
|
2012 |
_deg[it] = countOutArcs(_digraph, it);
|
| 2477 |
2013 |
}
|
| 2478 |
2014 |
}
|
| 2479 |
2015 |
|
| 2480 |
2016 |
virtual void clear() {
|
| 2481 |
|
for(typename _Digraph::NodeIt it(digraph); it != INVALID; ++it) {
|
| 2482 |
|
deg[it] = 0;
|
|
2017 |
for(typename Digraph::NodeIt it(_digraph); it != INVALID; ++it) {
|
|
2018 |
_deg[it] = 0;
|
| 2483 |
2019 |
}
|
| 2484 |
2020 |
}
|
| 2485 |
2021 |
private:
|
| 2486 |
2022 |
|
| 2487 |
|
const _Digraph& digraph;
|
| 2488 |
|
AutoNodeMap deg;
|
|
2023 |
const Digraph& _digraph;
|
|
2024 |
AutoNodeMap _deg;
|
| 2489 |
2025 |
};
|
| 2490 |
2026 |
|
| 2491 |
2027 |
|
| 2492 |
2028 |
///Dynamic arc look up between given endpoints.
|
| 2493 |
2029 |
|
| 2494 |
2030 |
///\ingroup gutils
|
| 2495 |
2031 |
///Using this class, you can find an arc in a digraph from a given
|
| 2496 |
2032 |
///source to a given target in amortized time <em>O(log d)</em>,
|
| 2497 |
2033 |
///where <em>d</em> is the out-degree of the source node.
|
| 2498 |
2034 |
///
|
| 2499 |
2035 |
///It is possible to find \e all parallel arcs between two nodes with
|
| 2500 |
2036 |
///the \c findFirst() and \c findNext() members.
|
| 2501 |
2037 |
///
|
| 2502 |
2038 |
///See the \ref ArcLookUp and \ref AllArcLookUp classes if your
|
| 2503 |
|
///digraph do not changed so frequently.
|
|
2039 |
///digraph is not changed so frequently.
|
| 2504 |
2040 |
///
|
| 2505 |
2041 |
///This class uses a self-adjusting binary search tree, Sleator's
|
| 2506 |
2042 |
///and Tarjan's Splay tree for guarantee the logarithmic amortized
|
| 2507 |
2043 |
///time bound for arc lookups. This class also guarantees the
|
| 2508 |
2044 |
///optimal time bound in a constant factor for any distribution of
|
| 2509 |
2045 |
///queries.
|
| 2510 |
2046 |
///
|
| 2511 |
2047 |
///\param G The type of the underlying digraph.
|
| 2512 |
2048 |
///
|
| 2513 |
2049 |
///\sa ArcLookUp
|
| 2514 |
2050 |
///\sa AllArcLookUp
|
| 2515 |
2051 |
template<class G>
|
| 2516 |
2052 |
class DynArcLookUp
|
| 2517 |
2053 |
: protected ItemSetTraits<G, typename G::Arc>::ItemNotifier::ObserverBase
|
| 2518 |
2054 |
{
|
| 2519 |
2055 |
public:
|
| 2520 |
2056 |
typedef typename ItemSetTraits<G, typename G::Arc>
|
| 2521 |
2057 |
::ItemNotifier::ObserverBase Parent;
|
| 2522 |
2058 |
|
| 2523 |
|
GRAPH_TYPEDEFS(typename G);
|
|
2059 |
DIGRAPH_TYPEDEFS(typename G);
|
| 2524 |
2060 |
typedef G Digraph;
|
| 2525 |
2061 |
|
| 2526 |
2062 |
protected:
|
| 2527 |
2063 |
|
| 2528 |
2064 |
class AutoNodeMap : public DefaultMap<G, Node, Arc> {
|
| 2529 |
2065 |
public:
|
| 2530 |
2066 |
|
| 2531 |
2067 |
typedef DefaultMap<G, Node, Arc> Parent;
|
| 2532 |
2068 |
|
| 2533 |
2069 |
AutoNodeMap(const G& digraph) : Parent(digraph, INVALID) {}
|
| 2534 |
2070 |
|
| 2535 |
2071 |
virtual void add(const Node& node) {
|
| ... |
... |
@@ -2826,118 +2362,118 @@
|
| 2826 |
2362 |
public:
|
| 2827 |
2363 |
|
| 2828 |
2364 |
///Find an arc between two nodes.
|
| 2829 |
2365 |
|
| 2830 |
2366 |
///Find an arc between two nodes in time <em>O(</em>log<em>d)</em>, where
|
| 2831 |
2367 |
/// <em>d</em> is the number of outgoing arcs of \c s.
|
| 2832 |
2368 |
///\param s The source node
|
| 2833 |
2369 |
///\param t The target node
|
| 2834 |
2370 |
///\return An arc from \c s to \c t if there exists,
|
| 2835 |
2371 |
///\ref INVALID otherwise.
|
| 2836 |
2372 |
Arc operator()(Node s, Node t) const
|
| 2837 |
2373 |
{
|
| 2838 |
|
Arc e = _head[s];
|
|
2374 |
Arc a = _head[s];
|
| 2839 |
2375 |
while (true) {
|
| 2840 |
|
if (_g.target(e) == t) {
|
| 2841 |
|
const_cast<DynArcLookUp&>(*this).splay(e);
|
| 2842 |
|
return e;
|
| 2843 |
|
} else if (t < _g.target(e)) {
|
| 2844 |
|
if (_left[e] == INVALID) {
|
| 2845 |
|
const_cast<DynArcLookUp&>(*this).splay(e);
|
|
2376 |
if (_g.target(a) == t) {
|
|
2377 |
const_cast<DynArcLookUp&>(*this).splay(a);
|
|
2378 |
return a;
|
|
2379 |
} else if (t < _g.target(a)) {
|
|
2380 |
if (_left[a] == INVALID) {
|
|
2381 |
const_cast<DynArcLookUp&>(*this).splay(a);
|
| 2846 |
2382 |
return INVALID;
|
| 2847 |
2383 |
} else {
|
| 2848 |
|
e = _left[e];
|
|
2384 |
a = _left[a];
|
| 2849 |
2385 |
}
|
| 2850 |
2386 |
} else {
|
| 2851 |
|
if (_right[e] == INVALID) {
|
| 2852 |
|
const_cast<DynArcLookUp&>(*this).splay(e);
|
|
2387 |
if (_right[a] == INVALID) {
|
|
2388 |
const_cast<DynArcLookUp&>(*this).splay(a);
|
| 2853 |
2389 |
return INVALID;
|
| 2854 |
2390 |
} else {
|
| 2855 |
|
e = _right[e];
|
|
2391 |
a = _right[a];
|
| 2856 |
2392 |
}
|
| 2857 |
2393 |
}
|
| 2858 |
2394 |
}
|
| 2859 |
2395 |
}
|
| 2860 |
2396 |
|
| 2861 |
2397 |
///Find the first arc between two nodes.
|
| 2862 |
2398 |
|
| 2863 |
2399 |
///Find the first arc between two nodes in time
|
| 2864 |
2400 |
/// <em>O(</em>log<em>d)</em>, where <em>d</em> is the number of
|
| 2865 |
2401 |
/// outgoing arcs of \c s.
|
| 2866 |
2402 |
///\param s The source node
|
| 2867 |
2403 |
///\param t The target node
|
| 2868 |
2404 |
///\return An arc from \c s to \c t if there exists, \ref INVALID
|
| 2869 |
2405 |
/// otherwise.
|
| 2870 |
2406 |
Arc findFirst(Node s, Node t) const
|
| 2871 |
2407 |
{
|
| 2872 |
|
Arc e = _head[s];
|
|
2408 |
Arc a = _head[s];
|
| 2873 |
2409 |
Arc r = INVALID;
|
| 2874 |
2410 |
while (true) {
|
| 2875 |
|
if (_g.target(e) < t) {
|
| 2876 |
|
if (_right[e] == INVALID) {
|
| 2877 |
|
const_cast<DynArcLookUp&>(*this).splay(e);
|
|
2411 |
if (_g.target(a) < t) {
|
|
2412 |
if (_right[a] == INVALID) {
|
|
2413 |
const_cast<DynArcLookUp&>(*this).splay(a);
|
| 2878 |
2414 |
return r;
|
| 2879 |
2415 |
} else {
|
| 2880 |
|
e = _right[e];
|
|
2416 |
a = _right[a];
|
| 2881 |
2417 |
}
|
| 2882 |
2418 |
} else {
|
| 2883 |
|
if (_g.target(e) == t) {
|
| 2884 |
|
r = e;
|
|
2419 |
if (_g.target(a) == t) {
|
|
2420 |
r = a;
|
| 2885 |
2421 |
}
|
| 2886 |
|
if (_left[e] == INVALID) {
|
| 2887 |
|
const_cast<DynArcLookUp&>(*this).splay(e);
|
|
2422 |
if (_left[a] == INVALID) {
|
|
2423 |
const_cast<DynArcLookUp&>(*this).splay(a);
|
| 2888 |
2424 |
return r;
|
| 2889 |
2425 |
} else {
|
| 2890 |
|
e = _left[e];
|
|
2426 |
a = _left[a];
|
| 2891 |
2427 |
}
|
| 2892 |
2428 |
}
|
| 2893 |
2429 |
}
|
| 2894 |
2430 |
}
|
| 2895 |
2431 |
|
| 2896 |
2432 |
///Find the next arc between two nodes.
|
| 2897 |
2433 |
|
| 2898 |
2434 |
///Find the next arc between two nodes in time
|
| 2899 |
2435 |
/// <em>O(</em>log<em>d)</em>, where <em>d</em> is the number of
|
| 2900 |
2436 |
/// outgoing arcs of \c s.
|
| 2901 |
2437 |
///\param s The source node
|
| 2902 |
2438 |
///\param t The target node
|
| 2903 |
2439 |
///\return An arc from \c s to \c t if there exists, \ref INVALID
|
| 2904 |
2440 |
/// otherwise.
|
| 2905 |
2441 |
|
| 2906 |
2442 |
///\note If \c e is not the result of the previous \c findFirst()
|
| 2907 |
2443 |
///operation then the amorized time bound can not be guaranteed.
|
| 2908 |
2444 |
#ifdef DOXYGEN
|
| 2909 |
|
Arc findNext(Node s, Node t, Arc e) const
|
|
2445 |
Arc findNext(Node s, Node t, Arc a) const
|
| 2910 |
2446 |
#else
|
| 2911 |
|
Arc findNext(Node, Node t, Arc e) const
|
|
2447 |
Arc findNext(Node, Node t, Arc a) const
|
| 2912 |
2448 |
#endif
|
| 2913 |
2449 |
{
|
| 2914 |
|
if (_right[e] != INVALID) {
|
| 2915 |
|
e = _right[e];
|
| 2916 |
|
while (_left[e] != INVALID) {
|
| 2917 |
|
e = _left[e];
|
|
2450 |
if (_right[a] != INVALID) {
|
|
2451 |
a = _right[a];
|
|
2452 |
while (_left[a] != INVALID) {
|
|
2453 |
a = _left[a];
|
| 2918 |
2454 |
}
|
| 2919 |
|
const_cast<DynArcLookUp&>(*this).splay(e);
|
|
2455 |
const_cast<DynArcLookUp&>(*this).splay(a);
|
| 2920 |
2456 |
} else {
|
| 2921 |
|
while (_parent[e] != INVALID && _right[_parent[e]] == e) {
|
| 2922 |
|
e = _parent[e];
|
|
2457 |
while (_parent[a] != INVALID && _right[_parent[a]] == a) {
|
|
2458 |
a = _parent[a];
|
| 2923 |
2459 |
}
|
| 2924 |
|
if (_parent[e] == INVALID) {
|
|
2460 |
if (_parent[a] == INVALID) {
|
| 2925 |
2461 |
return INVALID;
|
| 2926 |
2462 |
} else {
|
| 2927 |
|
e = _parent[e];
|
| 2928 |
|
const_cast<DynArcLookUp&>(*this).splay(e);
|
|
2463 |
a = _parent[a];
|
|
2464 |
const_cast<DynArcLookUp&>(*this).splay(a);
|
| 2929 |
2465 |
}
|
| 2930 |
2466 |
}
|
| 2931 |
|
if (_g.target(e) == t) return e;
|
|
2467 |
if (_g.target(a) == t) return a;
|
| 2932 |
2468 |
else return INVALID;
|
| 2933 |
2469 |
}
|
| 2934 |
2470 |
|
| 2935 |
2471 |
};
|
| 2936 |
2472 |
|
| 2937 |
2473 |
///Fast arc look up between given endpoints.
|
| 2938 |
2474 |
|
| 2939 |
2475 |
///\ingroup gutils
|
| 2940 |
2476 |
///Using this class, you can find an arc in a digraph from a given
|
| 2941 |
2477 |
///source to a given target in time <em>O(log d)</em>,
|
| 2942 |
2478 |
///where <em>d</em> is the out-degree of the source node.
|
| 2943 |
2479 |
///
|
| ... |
... |
@@ -2948,25 +2484,25 @@
|
| 2948 |
2484 |
///refresh(Node)) this data structure
|
| 2949 |
2485 |
///whenever the digraph changes. This is a time consuming (superlinearly
|
| 2950 |
2486 |
///proportional (<em>O(m</em>log<em>m)</em>) to the number of arcs).
|
| 2951 |
2487 |
///
|
| 2952 |
2488 |
///\param G The type of the underlying digraph.
|
| 2953 |
2489 |
///
|
| 2954 |
2490 |
///\sa DynArcLookUp
|
| 2955 |
2491 |
///\sa AllArcLookUp
|
| 2956 |
2492 |
template<class G>
|
| 2957 |
2493 |
class ArcLookUp
|
| 2958 |
2494 |
{
|
| 2959 |
2495 |
public:
|
| 2960 |
|
GRAPH_TYPEDEFS(typename G);
|
|
2496 |
DIGRAPH_TYPEDEFS(typename G);
|
| 2961 |
2497 |
typedef G Digraph;
|
| 2962 |
2498 |
|
| 2963 |
2499 |
protected:
|
| 2964 |
2500 |
const Digraph &_g;
|
| 2965 |
2501 |
typename Digraph::template NodeMap<Arc> _head;
|
| 2966 |
2502 |
typename Digraph::template ArcMap<Arc> _left;
|
| 2967 |
2503 |
typename Digraph::template ArcMap<Arc> _right;
|
| 2968 |
2504 |
|
| 2969 |
2505 |
class ArcLess {
|
| 2970 |
2506 |
const Digraph &g;
|
| 2971 |
2507 |
public:
|
| 2972 |
2508 |
ArcLess(const Digraph &_g) : g(_g) {}
|
| ... |
... |
@@ -3065,25 +2601,25 @@
|
| 3065 |
2601 |
///\param G The type of the underlying digraph.
|
| 3066 |
2602 |
///
|
| 3067 |
2603 |
///\sa DynArcLookUp
|
| 3068 |
2604 |
///\sa ArcLookUp
|
| 3069 |
2605 |
template<class G>
|
| 3070 |
2606 |
class AllArcLookUp : public ArcLookUp<G>
|
| 3071 |
2607 |
{
|
| 3072 |
2608 |
using ArcLookUp<G>::_g;
|
| 3073 |
2609 |
using ArcLookUp<G>::_right;
|
| 3074 |
2610 |
using ArcLookUp<G>::_left;
|
| 3075 |
2611 |
using ArcLookUp<G>::_head;
|
| 3076 |
2612 |
|
| 3077 |
|
GRAPH_TYPEDEFS(typename G);
|
|
2613 |
DIGRAPH_TYPEDEFS(typename G);
|
| 3078 |
2614 |
typedef G Digraph;
|
| 3079 |
2615 |
|
| 3080 |
2616 |
typename Digraph::template ArcMap<Arc> _next;
|
| 3081 |
2617 |
|
| 3082 |
2618 |
Arc refreshNext(Arc head,Arc next=INVALID)
|
| 3083 |
2619 |
{
|
| 3084 |
2620 |
if(head==INVALID) return next;
|
| 3085 |
2621 |
else {
|
| 3086 |
2622 |
next=refreshNext(_right[head],next);
|
| 3087 |
2623 |
// _next[head]=next;
|
| 3088 |
2624 |
_next[head]=( next!=INVALID && _g.target(next)==_g.target(head))
|
| 3089 |
2625 |
? next : INVALID;
|