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2024-04-24 14:39:58 +00:00

291 lines
9.3 KiB
C++

#include "centrality.h"
#ifdef EASYGRAPH_ENABLE_GPU
#include <gpu_easygraph.h>
#endif
#include "../../classes/graph.h"
#include "../../common/utils.h"
#include "../../classes/linkgraph.h"
#include "../../classes/segment_tree.cpp"
void betweenness_dijkstra(const Graph_L& G_l, const int &S, std::vector<double>& bc, double cutoff, Segment_tree_zkw& segment_tree_zkw, int endpoints_) {
const int dis_inf = 0x3f3f3f3f;
int N = G_l.n;
int edge_number_path = 0;
segment_tree_zkw.init(N);
std::vector<int> dis(N+1, INT_MAX);
std::vector<int> head_path(N+1, 0);
const std::vector<int>& head = G_l.head;
const std::vector<LinkEdge>& E = G_l.edges;
int edges_num = E.size();
std::vector<int> St(N+1, 0);
std::vector<long long> count_path(N+1, 0);
std::vector<double> delta(N+1, 0);
std::vector<LinkEdge> E_path(edges_num+1);
head_path[S] = 0;
dis[S] = 0;
count_path[S] = 1;
segment_tree_zkw.change(S, 0);
int cnt_St = 0;
while(segment_tree_zkw.t[1] != dis_inf) {
int u = segment_tree_zkw.num[1];
if(u==0) break;
segment_tree_zkw.change(u, dis_inf);
if (cutoff >= 0 && dis[u] > cutoff){
continue;
}
St[cnt_St++] = u;
for(int p = head[u]; p != -1; p = E[p].next) {
int v = E[p].to;
if(cutoff >= 0 && (dis[u] + E[p].w) > cutoff){
continue;
}
if (dis[v] > dis[u] + E[p].w) {
dis[v] = dis[u] + E[p].w;
segment_tree_zkw.change(v, dis[v]);
count_path[v] = count_path[u];
head_path[v] = 0;
E_path[++edge_number_path].next = head_path[v];
E_path[edge_number_path].to = u;
head_path[v] = edge_number_path;
}
else if (dis[v] == dis[u] + E[p].w) {
count_path[v] += count_path[u];
E_path[++edge_number_path].next = head_path[v];
E_path[edge_number_path].to = u;
head_path[v] = edge_number_path;
}
}
}
if (endpoints_) {
bc[S] += cnt_St - 1;
}
while (cnt_St > 0) {
int u = St[--cnt_St];
float coeff = (1.0 + delta[u]) / count_path[u];
for(int p = head_path[u]; p; p = E_path[p].next){
delta[E_path[p].to] += count_path[E_path[p].to] * coeff;
}
if (u != S)
bc[u] += delta[u] + endpoints_;
}
}
static double calc_scale(int len_V, int is_directed, int normalized, int endpoints) {
double scale = 1.0;
if (normalized) {
if (endpoints) {
if (len_V < 2) {
scale = 1.0;
} else {
scale = 1.0 / (double(len_V) * (len_V - 1));
}
} else if (len_V <= 2) {
scale = 1.0;
} else {
scale = 1.0 / ((double(len_V) - 1) * (len_V - 2));
}
} else {
if (!is_directed) {
scale = 0.5;
} else {
scale = 1.0;
}
}
return scale;
}
static py::object invoke_cpp_betweenness_centrality(py::object G, py::object weight,
py::object cutoff, py::object sources,
py::object normalized, py::object endpoints){
Graph& G_ = G.cast<Graph&>();
int cutoff_ = -1;
if (!cutoff.is_none()){
cutoff_ = cutoff.cast<int>();
}
int N = G_.node.size();
bool is_directed = G.attr("is_directed")().cast<bool>();
int normalized_ = normalized.cast<bool>();
int endpoints_ = endpoints.cast<bool>();
double scale = calc_scale(N, is_directed, normalized_, endpoints_);
std::string weight_key = weight_to_string(weight);
Graph_L G_l;
if(G_.linkgraph_dirty){
G_l = graph_to_linkgraph(G_, is_directed, weight_key, false, false);
G_.linkgraph_structure=G_l;
G_.linkgraph_dirty = false;
}
else{
G_l = G_.linkgraph_structure;
}
Segment_tree_zkw segment_tree_zkw(N);
std::vector<double> bc(N+1, 0);
py::list res_lst = py::list();
if(!sources.is_none()){
py::list sources_list = py::list(sources);
int sources_list_len = py::len(sources_list);
for(register int i = 0; i < sources_list_len; i++){
if(G_.node_to_id.attr("get")(sources_list[i],py::none()).is_none()){
printf("The node should exist in the graph!");
return py::none();
}
py::list res_lst = py::list();
node_t source_id = G_.node_to_id.attr("get")(sources_list[i]).cast<node_t>();
betweenness_dijkstra(G_l, source_id, bc, cutoff_, segment_tree_zkw, endpoints_);
}
for(int i = 1; i <= N; i++){
res_lst.append(scale * bc[i]);
}
}
else{
for (int i = 1; i <= N; ++i){
betweenness_dijkstra(G_l, i, bc, cutoff_,segment_tree_zkw, endpoints_);
}
for(int i = 1; i <= N; i++){
res_lst.append(scale * bc[i]);
}
}
py::list py_nodes_order;
std::vector<node_t> node_idx;
for (auto it = G_.node.begin(); it != G_.node.end(); ++it) {
node_idx.push_back(it->first);
}
std::sort(node_idx.begin(), node_idx.end());
for (int i = 0; i < node_idx.size(); ++i) {
py_nodes_order.append(G_.id_to_node[py::cast(node_idx[i])]);
}
py::list ret;
ret.append(py_nodes_order);
ret.append(res_lst);
return ret;
}
#ifdef EASYGRAPH_ENABLE_GPU
static py::object invoke_gpu_betweenness_centrality(py::object G, py::object weight,
py::object py_sources, py::object normalized, py::object endpoints) {
Graph& G_ = G.cast<Graph&>();
py::list py_nodes_order;
std::vector<int> E;
std::vector<int> V;
std::vector<double> W;
std::vector<int> sources;
std::vector<double> BC;
bool is_directed = G.attr("is_directed")().cast<bool>();
G_.gen_CSR(weight, py_sources, py_nodes_order, V, E, W, sources);
int gpu_r = gpu_easygraph::betweenness_centrality(V, E, W, sources,
is_directed, normalized.cast<py::bool_>(),
endpoints.cast<py::bool_>(), BC);
if (gpu_r != gpu_easygraph::EG_GPU_SUCC) {
// the code below will throw an exception
py::pybind11_fail(gpu_easygraph::err_code_detail(gpu_r));
}
py::list ret_val;
for (int i = 0; i < BC.size(); ++i) {
ret_val.append(BC[i]);
}
py::list ret;
ret.append(py_nodes_order);
ret.append(ret_val);
return ret;
}
#endif
py::object betweenness_centrality(py::object G, py::object weight, py::object cutoff, py::object sources,
py::object normalized, py::object endpoints) {
#ifdef EASYGRAPH_ENABLE_GPU
return invoke_gpu_betweenness_centrality(G, weight, sources, normalized, endpoints);
#else
return invoke_cpp_betweenness_centrality(G, weight, cutoff, sources, normalized, endpoints);
#endif
}
// void betweenness_dijkstra(const Graph_L& G_l, const int &S, std::vector<double>& bc, double cutoff) {
// int N = G_l.n;
// int edge_number_path = 0;
// __gnu_pbds::priority_queue<compare_node> q;
// std::vector<double> dis(N+1, INFINITY);
// std::vector<bool> vis(N+1, false);
// std::vector<int> head_path(N+1, 0);
// const std::vector<int>& head = G_l.head;
// const std::vector<LinkEdge>& E = G_l.edges;
// int edges_num = E.size();
// std::vector<int> St(N+1, 0);
// std::vector<long long> count_path(N+1, 0);
// std::vector<double> delta(N+1, 0);
// std::vector<LinkEdge> E_path(edges_num+1);
// head_path[S] = 0;
// dis[S] = 0;
// count_path[S] = 1;
// q.push(compare_node(S, 0));
// int cnt_St = 0;
// while(!q.empty()) {
// int u = q.top().x;
// q.pop();
// if (vis[u]){
// continue;
// }
// if (cutoff >= 0 && dis[u] > cutoff){
// continue;
// }
// St[cnt_St++] = u;
// vis[u] = true;
// for(int p = head[u]; p != -1; p = E[p].next) {
// int v = E[p].to;
// if(cutoff >= 0 && (dis[u] + E[p].w) > cutoff){
// continue;
// }
// if (dis[v] > dis[u] + E[p].w) {
// dis[v] = dis[u] + E[p].w;
// q.push(compare_node(v, dis[v]));
// count_path[v] = count_path[u];
// head_path[v] = 0;
// E_path[++edge_number_path].next = head_path[v];
// E_path[edge_number_path].to = u;
// head_path[v] = edge_number_path;
// }
// else if (dis[v] == dis[u] + E[p].w) {
// count_path[v] += count_path[u];
// E_path[++edge_number_path].next = head_path[v];
// E_path[edge_number_path].to = u;
// head_path[v] = edge_number_path;
// }
// }
// }
// while (cnt_St > 0) {
// int u = St[--cnt_St];
// float coeff = (1.0 + delta[u]) / count_path[u];
// for(int p = head_path[u]; p; p = E_path[p].next){
// delta[E_path[p].to] += count_path[E_path[p].to] * coeff;
// }
// if (u != S)
// bc[u] += delta[u];
// }
// }