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163 lines
5.0 KiB
C++
163 lines
5.0 KiB
C++
//=======================================================================
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// Copyright 2009 Trustees of Indiana University.
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// Authors: Michael Hansen, Andrew Lumsdaine
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//
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// Distributed under the Boost Software License, Version 1.0. (See
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// accompanying file LICENSE_1_0.txt or copy at
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// http://www.boost.org/LICENSE_1_0.txt)
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//=======================================================================
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#include <iostream>
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#include <map>
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#include <set>
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#include <boost/foreach.hpp>
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#include <boost/graph/adjacency_list.hpp>
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#include <boost/graph/incremental_components.hpp>
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#include <boost/graph/random.hpp>
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#include <boost/lexical_cast.hpp>
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#include <boost/property_map/property_map.hpp>
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#include <boost/random.hpp>
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#include <boost/test/minimal.hpp>
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using namespace boost;
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typedef adjacency_list<vecS, vecS, undirectedS> VectorGraph;
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typedef adjacency_list<listS, listS, undirectedS,
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property<vertex_index_t, unsigned int> > ListGraph;
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template <typename Graph>
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void test_graph(const Graph& graph) {
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typedef typename graph_traits<Graph>::vertex_descriptor vertex_descriptor;
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typedef typename graph_traits<Graph>::edge_descriptor edge_descriptor;
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typedef typename graph_traits<Graph>::vertices_size_type vertices_size_type;
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typedef typename property_map<Graph, vertex_index_t>::type IndexPropertyMap;
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typedef std::map<vertex_descriptor, vertices_size_type> RankMap;
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typedef associative_property_map<RankMap> RankPropertyMap;
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typedef std::vector<vertex_descriptor> ParentMap;
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typedef iterator_property_map<typename ParentMap::iterator,
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IndexPropertyMap, vertex_descriptor, vertex_descriptor&> IndexParentMap;
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RankMap rank_map;
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RankPropertyMap rank_property_map(rank_map);
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ParentMap parent_map(num_vertices(graph));
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IndexParentMap index_parent_map(parent_map.begin());
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// Create disjoint sets of vertices from the graph
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disjoint_sets<RankPropertyMap, IndexParentMap>
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vertex_sets(rank_property_map, index_parent_map);
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initialize_incremental_components(graph, vertex_sets);
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incremental_components(graph, vertex_sets);
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// Build component index from the graph's vertices, its index map,
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// and the disjoint sets.
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typedef component_index<vertices_size_type> Components;
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Components vertex_components(parent_map.begin(),
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parent_map.end(),
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get(boost::vertex_index, graph));
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// Create a reverse-lookup map for vertex indices
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std::vector<vertex_descriptor> reverse_index_map(num_vertices(graph));
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BOOST_FOREACH(vertex_descriptor vertex, vertices(graph)) {
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reverse_index_map[get(get(boost::vertex_index, graph), vertex)] = vertex;
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}
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// Verify that components are really connected
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BOOST_FOREACH(vertices_size_type component_index,
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vertex_components) {
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std::set<vertex_descriptor> component_vertices;
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BOOST_FOREACH(vertices_size_type child_index,
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vertex_components[component_index]) {
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vertex_descriptor child_vertex = reverse_index_map[child_index];
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component_vertices.insert(child_vertex);
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} // foreach child_index
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// Verify that children are connected to each other in some
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// manner, but not to vertices outside their component.
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BOOST_FOREACH(vertex_descriptor child_vertex,
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component_vertices) {
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// Skip orphan vertices
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if (out_degree(child_vertex, graph) == 0) {
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continue;
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}
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// Make sure at least one edge exists between [child_vertex] and
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// another vertex in the component.
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bool edge_exists = false;
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BOOST_FOREACH(edge_descriptor child_edge,
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out_edges(child_vertex, graph)) {
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if (component_vertices.count(target(child_edge, graph)) > 0) {
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edge_exists = true;
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break;
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}
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} // foreach child_edge
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BOOST_REQUIRE(edge_exists);
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} // foreach child_vertex
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} // foreach component_index
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} // test_graph
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int test_main(int argc, char* argv[])
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{
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std::size_t vertices_to_generate = 100,
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edges_to_generate = 50,
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random_seed = time(0);
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// Parse command-line arguments
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if (argc > 1) {
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vertices_to_generate = lexical_cast<std::size_t>(argv[1]);
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}
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if (argc > 2) {
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edges_to_generate = lexical_cast<std::size_t>(argv[2]);
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}
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if (argc > 3) {
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random_seed = lexical_cast<std::size_t>(argv[3]);
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}
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minstd_rand generator(random_seed);
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// Generate random vector and list graphs
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VectorGraph vector_graph;
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generate_random_graph(vector_graph, vertices_to_generate,
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edges_to_generate, generator, false);
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test_graph(vector_graph);
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ListGraph list_graph;
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generate_random_graph(list_graph, vertices_to_generate,
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edges_to_generate, generator, false);
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// Assign indices to list_graph's vertices
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graph_traits<ListGraph>::vertices_size_type index = 0;
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BOOST_FOREACH(graph_traits<ListGraph>::vertex_descriptor vertex,
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vertices(list_graph)) {
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put(get(boost::vertex_index, list_graph), vertex, index++);
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}
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test_graph(list_graph);
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return 0;
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}
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