我正在尝试使用openmp实现图形同构的并行代码(检查2个图是否是同构的)。我有下面的顺序代码,用C ++编写,只适用于常规图形。 我从文本文件(input.txt)中获取了输入,该文件包含多个节点和2个表示2个图形的邻接矩阵。 output.txt文件指示图形是否是同构的或NON同构以及执行时间。 我使用了is_regular()函数来检查图形是否是常规图形。
有人可以帮我用openmp并行化这段代码。
#include <time.h>
#include <stdio.h>
#include <iostream>
#include <algorithm>
#include <iterator>
#include <vector>
#include <string>
using namespace std;
bool is_regular(vector<string> &adj) {
int nv = adj.size();
int cnt = 0;
for (int j = 0; j < nv; ++j)
if (adj[0][j] == '1') ++cnt;
for (int i = 1; i < nv; ++i) {
int sch = 0;
for (int j = 0; j < nv; ++j)
if (adj[i][j] == '1') ++sch;
if (sch != cnt) return false;
}
return true;
}
vector<vector<int> > foo1(vector<string> &adj, char R) {
int nv = adj.size();
vector<vector<int> > res;
for (int v1 = 0; v1 < nv; ++v1) {
vector<int> tmp;
vector<bool> b(nv);
vector<int> p, q;
p.push_back(v1);
b[v1] = true;
while (!p.empty()) {
q.clear();
for (size_t i = 0; i < p.size(); ++i) {
for (int j = 0; j < nv; ++j)
{
if (!b[j] && adj[p[i]][j] == R) {
b[j] = true;
q.push_back(j);
}
}
}
if (q.empty()) break;
vector<int> d(p.size());
vector<int> e(q.size());
for (size_t i = 0; i < p.size(); ++i) {
for (size_t j = 0; j < q.size(); ++j) {
if (adj[p[i]][q[j]] == R) {++d[i]; --e[j];}
}
}
sort(d.begin(), d.end());
sort(e.begin(), e.end());
copy(d.begin(), d.end(), back_inserter(tmp));
copy(e.begin(), e.end(), back_inserter(tmp));
p.swap(q);
}
res.push_back(tmp);
}
sort(res.begin(), res.end());
return res;
}
vector<vector<int> > foo2(vector<string> &adj, char R) {
int nv = adj.size();
vector<vector<int> > res;
for (int v1 = 0; v1 < nv; ++v1) {
for (int v2 = v1 + 1; v2 < nv; ++v2) {
vector<int> tmp;
vector<bool> b(nv);
vector<int> p, q;
p.push_back(v1);
p.push_back(v2);
b[v1] = true;
b[v2] = true;
while (!p.empty()) {
q.clear();
for (size_t i = 0; i < p.size(); ++i) {
for (int j = 0; j < nv; ++j) {
if (!b[j] && adj[p[i]][j] == R) {
b[j] = true;
q.push_back(j);
}
}
}
if (q.empty()) break;
vector<int> d(p.size());
vector<int> e(q.size());
for (size_t i = 0; i < p.size(); ++i) {
for (size_t j = 0; j < q.size(); ++j) {
if (adj[p[i]][q[j]] == R) {++d[i]; --e[j];}
}
}
sort(d.begin(), d.end());
sort(e.begin(), e.end());
copy(d.begin(), d.end(), back_inserter(tmp));
copy(e.begin(), e.end(), back_inserter(tmp));
p.swap(q);
}
res.push_back(tmp);
}
}
sort(res.begin(), res.end());
return res;
}
vector<vector<int> > foo3(vector<string> &adj, char R) {
int nv = adj.size();
vector<vector<int> > res;
for (int v1 = 0; v1 < nv; ++v1) {
for (int v2 = v1 + 1; v2 < nv; ++v2) {
for (int v3 = v2 + 1; v3 < nv; ++v3) {
vector<int> tmp;
vector<bool> b(nv);
vector<int> p, q;
p.push_back(v1);
p.push_back(v2);
p.push_back(v3);
b[v1] = true;
b[v2] = true;
b[v3] = true;
while (!p.empty()) {
q.clear();
for (size_t i = 0; i < p.size(); ++i) {
for (int j = 0; j < nv; ++j) {
if (!b[j] && adj[p[i]][j] == R) {
b[j] = true;
q.push_back(j);
}
}
}
if (q.empty()) break;
vector<int> d(p.size());
vector<int> e(q.size());
for (size_t i = 0; i < p.size(); ++i) {
for (size_t j = 0; j < q.size(); ++j) {
if (adj[p[i]][q[j]] == R) {++d[i]; --e[j];}
}
}
sort(d.begin(), d.end());
sort(e.begin(), e.end());
copy(d.begin(), d.end(), back_inserter(tmp));
copy(e.begin(), e.end(), back_inserter(tmp));
p.swap(q);
}
res.push_back(tmp);
}
}
}
sort(res.begin(), res.end());
return res;
}
int main() {
int nt = 1;
freopen("input.txt", "r", stdin);
freopen("output.txt", "w", stdout);
int n;
int tc = 0;
while (cin >> n) {
vector<string> adj1(n);
vector<string> adj2(n);
for (int i = 0; i < n; ++i) cin >> adj1[i];
for (int i = 0; i < n; ++i) cin >> adj2[i];
clock_t start = clock();
string answer = "NON-isomorphic";
if (!is_regular(adj1) || !is_regular(adj2)) {
answer = "Non regular graph";
goto mmm;
}
if (foo1(adj1,'1') != foo1(adj2,'1') || foo1(adj1,'0') != foo1(adj2,'0')) {
answer += " * ";
goto mmm;
}
if (foo2(adj1,'1') != foo2(adj2,'1') || foo2(adj1,'0') != foo2(adj2,'0')) {
answer += " ** ";
goto mmm;
}
if (foo3(adj1,'1') != foo3(adj2,'1') || foo3(adj1,'0') != foo3(adj2,'0')) {
answer += " ***";
goto mmm;
}
answer = "isomorphic";
mmm:
++tc;
printf("%d) n = %d %s", tc, n, answer.c_str());
printf(" %f\n", (double)(clock() - start) / CLOCKS_PER_SEC);
}
return 0;
}