이 제출은 이전 버전의 oj.uz에서 채점하였습니다. 현재는 제출 당시와는 다른 서버에서 채점을 하기 때문에, 다시 제출하면 결과가 달라질 수도 있습니다.
#include "closing.h"
#include <bits/stdc++.h>
using namespace std;
using ll = long long;
int max_score(int N, int X, int Y, ll K, vector<int> U, vector<int> V, vector<int> W) {
vector<vector<array<int, 2>>> adj(N);
for (int i = 0; i < N - 1; i++) {
adj[U[i]].push_back({V[i], W[i]});
adj[V[i]].push_back({U[i], W[i]});
}
auto bfs = [&](int s) {
vector<ll> dis(N);
vector<int> from(N, -1);
from[s] = s;
queue<int> q;
q.push(s);
while (!q.empty()) {
int x = q.front();
q.pop();
for (auto [y, z] : adj[x]) {
if (from[y] == -1) {
from[y] = x;
dis[y] = dis[x] + z;
q.push(y);
}
}
}
return make_pair(dis, from);
};
auto [dis_x, from_x] = bfs(X);
auto [dis_y, from_y] = bfs(Y);
vector<ll> one(N), two(N);
for (int i = 0; i < N; i++) {
tie(one[i], two[i]) = minmax(dis_x[i], dis_y[i]);
}
int ans = 0; {
auto a(one);
sort(a.begin(), a.end());
ll sum = 0;
while (ans < N && sum + a[ans] <= K) sum += a[ans++];
}
vector<int> path{X};
while (path.back() != Y) path.push_back(from_y[path.back()]);
int M = path.size();
vector<int> on_path(N);
for (auto x : path) on_path[x] = 1;
vector dp(N, vector(3, vector<ll>(2 * N + 1, 1e18)));
function<void(int, int)> dfs = [&](int x, int p) {
dp[x][1][1] = one[x];
dp[x][2][2] = two[x];
for (auto [y, z] : adj[x]) {
if (y == p || on_path[y]) continue;
dfs(y, x);
for (int i = 1; i < 2 * N; i++) {
for (int j = 2 * N; j > i; j--) {
dp[x][1][j] = min(dp[x][1][j], dp[y][1][i] + dp[x][1][j - i]);
dp[x][2][j] = min(dp[x][2][j], min(dp[y][1][i], dp[y][2][i]) + dp[x][2][j - i]);
}
}
}
};
for (auto x : path) dfs(x, -1);
vector f(M + 1, vector(3, vector<ll>(2 * N + 1, 1e18)));
f[0][0][0] = 0;
for (int i = 1; i <= M; i++) {
int x = path[i - 1];
for (int j = 0; j <= 2 * N; j++) {
for (int k = j; k <= 2 * N; k++) {
f[i][0][k] = min(f[i][0][k], f[i - 1][0][j] + dp[x][1][k - j]);
f[i][2][k] = min(f[i][2][k], min(f[i - 1][0][j], f[i - 1][2][j]) + dp[x][2][k - j]);
f[i][1][k] = min(f[i][1][k], min(f[i - 1][1][j], f[i - 1][2][j]) + dp[x][1][k - j]);
}
}
}
for (int i = 2 * N; i >= 0; i--) {
if (f[M][1][i] <= K || f[M][2][i] <= K) {
ans = max(ans, i);
}
}
return ans;
}
# | Verdict | Execution time | Memory | Grader output |
---|
Fetching results... |
# | Verdict | Execution time | Memory | Grader output |
---|
Fetching results... |
# | Verdict | Execution time | Memory | Grader output |
---|
Fetching results... |
# | Verdict | Execution time | Memory | Grader output |
---|
Fetching results... |
# | Verdict | Execution time | Memory | Grader output |
---|
Fetching results... |
# | Verdict | Execution time | Memory | Grader output |
---|
Fetching results... |
# | Verdict | Execution time | Memory | Grader output |
---|
Fetching results... |
# | Verdict | Execution time | Memory | Grader output |
---|
Fetching results... |
# | Verdict | Execution time | Memory | Grader output |
---|
Fetching results... |
# | Verdict | Execution time | Memory | Grader output |
---|
Fetching results... |