| # | 제출 시각 | 아이디 | 문제 | 언어 | 결과 | 실행 시간 | 메모리 |
|---|---|---|---|---|---|---|---|
| 420126 | JerryLiu06 | Harbingers (CEOI09_harbingers) | C++17 | 201 ms | 32696 KiB |
이 제출은 이전 버전의 oj.uz에서 채점하였습니다. 현재는 제출 당시와는 다른 서버에서 채점을 하기 때문에, 다시 제출하면 결과가 달라질 수도 있습니다.
#include <bits/stdc++.h>
using namespace std;
using ll = long long;
using ld = long double;
using db = double;
using str = string;
using pi = pair<int, int>;
using pl = pair<ll, ll>;
using pd = pair<db, db>;
using vi = vector<int>;
using vb = vector<bool>;
using vl = vector<ll>;
using vd = vector<db>;
using vs = vector<str>;
using vpi = vector<pi>;
using vpl = vector<pl>;
using vpd = vector<pd>;
#define mp make_pair
#define f first
#define s second
#define sz(x) (int)(x).size()
#define bg(x) begin(x)
#define all(x) bg(x), end(x)
#define sor(x) sort(all(x))
#define ft front()
#define bk back()
#define pb push_back
#define pf push_front
#define lb lower_bound
#define ub upper_bound
#define FOR(i, a, b) for (int i = (a); i < (b); i++)
#define F0R(i, a) FOR(i, 0, a)
#define ROF(i, a, b) for (int i = (b) - 1; i >= (a); i--)
#define R0F(i, a) ROF(i, 0, a)
#define EACH(a, x) for (auto& a : x)
const int MOD = 1e9 + 7;
const int MX = 1e5 + 10;
const ll INF = 1e18;
// Description: Li Chao Segment Tree. You can add lines of the form kx + m, and query maximum
// values at points x. *Useful for dynamic programming (CHT)* Time: O(lg N)
struct Line {
ll M, C; Line() { M = 0, C = INF; } Line(ll _M, ll _C) { M = _M; C = _C; }
ll operator()(ll X) { return M * X + C; }
};
vl allV;
struct LiChaoSegTree {
Line tree[4 * MX]; stack<pair<int, Line>> stck;
void update(int x, int l, int r, Line line) { int mid = (l + r) / 2;
bool L = tree[x](allV[l]) > line(allV[l]); bool M = tree[x](allV[mid]) > line(allV[mid]); bool R = tree[x](allV[r]) > line(allV[r]);
if (L == R) { if (L) { swap(tree[x], line); stck.push({x, line}); } return ; }
if (L == M) { if (L) { swap(tree[x], line); stck.push({x, line}); } update(2 * x + 1, mid + 1, r, line); }
if (M == R) { if (R) { swap(tree[x], line); stck.push({x, line}); } update(2 * x, l, mid, line); }
}
ll query(int x, int l, int r, int pos) {
int mid = (l + r) / 2; if (l == r) return tree[x](allV[pos]);
if (pos <= mid) return min(tree[x](allV[pos]), query(2 * x, l, mid, pos));
if (pos > mid) return min(tree[x](allV[pos]), query(2 * x + 1, mid + 1, r, pos));
}
void rollback(int prevSz) {
while (sz(stck) > prevSz) {
tree[stck.top().f] = stck.top().s; stck.pop();
}
}
};
int N; vpi adj[MX]; int S[MX], V[MX]; ll DP[MX]; LiChaoSegTree LC;
void DFS(int X, int P, ll depth) {
if (X > 1) {
DP[X] = LC.query(1, 0, sz(allV) - 1, lb(all(allV), V[X]) - allV.bg()) + V[X] * depth + S[X];
}
int cur = sz(LC.stck); LC.update(1, 0, sz(allV) - 1, Line(-depth, DP[X]));
EACH(Y, adj[X]) if (Y.f != P) DFS(Y.f, X, depth + Y.s);
LC.rollback(cur);
}
int main() {
ios_base::sync_with_stdio(false); cin.tie(0);
cin >> N; F0R(i, N - 1) { int A, B, L; cin >> A >> B >> L; adj[A].pb({B, L}), adj[B].pb({A, L}); }
FOR(i, 2, N + 1) cin >> S[i] >> V[i], allV.pb(V[i]);
sor(allV); allV.erase(unique(all(allV)), allV.end());
DFS(1, 0, 0); FOR(i, 2, N + 1) cout << DP[i] << " ";
}
컴파일 시 표준 에러 (stderr) 메시지
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