-
1234567891011121314151617181920212223242526272829303132333435363738394041424344454647484950515253545556575859606162636465666768697071727374757677787980818283#include<iostream>#include<queue>#include<vector>#include<cstring>#include<algorithm>#include<utility>using namespace std;int map[8][8];bool d[8][8];int dx[] = { 0,0,1,-1 };int dy[] = { 1,-1,0,0 };int r, c;vector<pair<int, int> > v;vector<pair<int, int> > virus;int main() {ios_base::sync_with_stdio(0);cin.tie(0);cin >> r >> c;int wall = 0;for (int i = 0; i < r; i++) {for (int j = 0; j < c; j++) {cin >> map[i][j];if (map[i][j] == 2) {virus.push_back(make_pair(i,j));}else if (map[i][j] == 0) {v.push_back(make_pair(i, j));}else if(map[i][j]==1)wall++;}}wall += 3;vector<int> seq;for (int i = 0; i < v.size(); i++) {if (i > v.size() - 4) {seq.push_back(1);}else {seq.push_back(0);}}int ans = r* c-wall;do {for (int i = 0; i < seq.size(); i++) {if (seq[i] == 1) {d[v[i].first][v[i].second] = true;}}int cnt = 0;queue<pair<int, int> > q;for (int i = 0; i < virus.size(); i++) {q.push(make_pair(virus[i].first, virus[i].second));d[virus[i].first][virus[i].second] = true;cnt++;}while (!q.empty()) {int x = q.front().first; int y = q.front().second;if (cnt > ans) break;q.pop();for (int i = 0; i < 4; i++) {int nx = x + dx[i]; int ny = y + dy[i];if (nx >= 0 && nx < r && ny >= 0 && ny < c) {if (d[nx][ny] == false &&map[nx][ny] == 0) {q.push(make_pair(nx, ny));d[nx][ny] = true;cnt++;}}}}if (ans > cnt) ans = cnt;memset(d, false, sizeof(d));} while (next_permutation(seq.begin(), seq.end()));cout << r*c - ans-wall << '\n';return 0;}http://colorscripter.com/info#e" target="_blank" style="color:#4f4f4ftext-decoration:none">Colored by Color Scripter8x8 배열이라 조합으로 풀수있는문제가 아닌가싶다
조금만커져도 절대로 브루트포스로 풀수없는문제.
뭐 맵을 기억하고 하는것을 사용하는사람도 많은데.. 그냥 bool배열 매번초기화하는것과, 벽세울곳을 true로 놓고 다센뒤 초기화 되는것을 생각하면, 그리 시간이오래걸리지않는모양이다