我正在尝试使用named_graph mixin,我有点困惑remove_vertex()应该如何工作。
#include <iostream>
#include <string>
#include <boost/lexical_cast.hpp>
#include <boost/graph/adjacency_list.hpp>
struct vertex_info {
std::string name; // uses vertex_from_name<vertex_info>
vertex_info(const std::string &name_) : name(name_) { }
};
ostream& operator<<(ostream & os, const vertex_info &v)
{
os << v.name;
return os;
}
namespace boost { namespace graph {
template<typename Type>
struct vertex_name_extractor
{
typedef Type type;
typedef const std::string& result_type;
result_type operator()(const Type& v) const
{
return v.name;
}
};
template<>
struct internal_vertex_name<vertex_info>
{
typedef vertex_name_extractor<vertex_info> type;
};
template<>
struct internal_vertex_constructor<vertex_info>
{
typedef vertex_from_name<vertex_info> type;
};
} }
typedef adjacency_list< vecS, vecS, undirectedS, vertex_info, edge_info> graph_t;
namespace bg=boost::graph;
int main()
{
using namespace std;
graph_t g;
int i;
typedef graph_traits<graph_t>::vertex_descriptor vert;
for(i=0;i < 10;++i)
{
string t_name("Vertex");
vert V;
t_name += lexical_cast<string>(i);
V = add_vertex(t_name,g);
}
typedef graph_t::vertex_name_type name_t;
name_t s_temp("Vertex2");
optional<vert> V(
find_vertex(s_temp,g));
if( V ) {
cout << "Found vertex:" << *V << '\n';
//remove_vertex(*V,g); // (1)
//remove_vertex(vertex(*V,g),g); // (2)
//remove_vertex(g[*V],g); // (3)
//remove_vertex(s_temp,g); // (4)
} else {
cout << "Vertex not found\n";
}
graph_traits<graph_t>::vertex_iterator v_i, v_end;
for(tie(v_i,v_end) = vertices(g); v_i != v_end; ++v_i)
{
cout << '\'' << g[*v_i] << '\'' << endl;;
}
}
当我尝试使用(3)或(4)时,我得到一个错误,没有匹配函数调用'remove_vertex(vertex_info&amp;,graph_t&amp;)'
adjacency_list.hpp:2211候选人:remove_vertex(typename graph_t :: vertex_descriptor,graph_t&amp;)
但是当我尝试使用(1)或(2)时,从“long unsigned int”到“const char *”的无效转换会出现错误。
error: initializing argument 1 of ‘std::basic_string<...'
boost/graph/named_graph.hpp:349
template<BGL_NAMED_GRAPH_PARAMS>
inline void BGL_NAMED_GRAPH::removing_vertex(Vertex vertex)
{
named_vertices.erase(vertex); //line 349
}
答案 0 :(得分:0)
vertex_name提取器的result_type应该删除const和引用限定符。函数对象应指定它返回一个const引用。这允许适当的元函数依赖于result_type而不删除它们。可以更轻松地指定重载的仿函数。
template<typename Type>
struct vertex_name_extractor
{
typedef Type type;
typedef std::string result_type;
const result_type& operator()(const Type& v) const
{
return v.name;
}
} ;
如果我们指定自己的构造函数,则可以更轻松地创建捆绑的VertexProperty。
template<typename VertexProperty>
struct vertex_info_constructor
{
typedef VertexProperty return_type;
typedef typename vertex_name_extractor<VertexProperty>::result_type argument_type;
return_type operator()(argument_type n)
{
VertexProperty v(n);
return v;
}
};
template<>
struct internal_vertex_constructor<vertex_info>
{
typedef vertex_info_constructor<vertex_info> type;
};
adjacency_list使用MI mixin,其基类maybe_named_graph&lt;&gt;。 在internal_vertex_name :: type为void时关闭named_graphs的示例之后,我添加了部分特化 maybe_name_graph :: type&gt;如下:
template<typename Graph, typename Vertex>
struct maybe_named_graph<Graph, Vertex, vertex_info, vertex_name_extractor<vertex_info> >
: public named_graph<Graph, Vertex, vertex_info>
{
typedef named_graph<Graph, Vertex, vertex_info> Base;
//maybe_named_graph() { }
typedef typename detail::extract_bundled_vertex<vertex_info>::type
bundled_vertex_property_type;
void added_vertex(Vertex v) { Base::added_vertex(v); }
void removing_vertex(Vertex v) {
const std::string &name = extract_name((Base::derived()[v]));
Base::named_vertices.erase(name);
}
void clearing_graph() { Base::clearing_graph(); }
optional<Vertex>
vertex_by_property(const bundled_vertex_property_type& t)
{
return Base::vertex_by_property(t);
}
};
现在adjacency_list的remove_vertex(VertexDescriptor,Graph)调用我的专门remove_node,它通过顶点描述符从named_graph中删除vertex_name。
注意:使用了vecS,因此您仍然需要小心迭代器失效。