Codeforces 474E - Pillars
一眼看上去非常像最长不下降子序列。
然后比赛的时候对每个答案长度为k的序列,维护最后一个数的最大值和最小值。
当时不知道为什么认为从长度最长倒推至前面不会太长,于是心满意足地敲了个O(n^2)。结果T了。。。
正确的做法应该用线段树维护,搜起来就是log(n),总的就是O(N*logN);
用非递归的方法写的
只用了77ms
#include <iostream> #include <cstdio> using namespace std; #define ll long long const int INF = 300009; struct node { ll key; int pos; } dtmin[INF], dtmax[INF]; ll n, d, t, x, M; ll pre[INF]; int f[INF], ans[INF], namax[INF], namin[INF]; inline int Searchmax (int x, ll k) { while (dtmax[x].key - k >= d) { if (x > M) return dtmax[x].pos; if (dtmax[x << 1 | 1].key - k >= d) x = x << 1 | 1; else x = x << 1; } return 0; } inline int Searchmin (int x, ll k) { while (k - dtmin[x].key >= d) { if (x > M) return dtmin[x].pos; if (k - dtmin[x << 1 | 1].key >= d) x = x << 1 | 1; else x = x << 1; } return 0; } inline void modify (int x, ll k, int i) { if (dtmax[x + M].key < k) namax[x] = i, dtmax[x + M].key = k; for (int t = x + M; dtmax[t >> 1].key < k && t > 0; t >>= 1) dtmax[t >> 1] = dtmax[t]; if (dtmin[x + M].key > k) namin[x] = i, dtmin[x + M].key = k; for (int t = x + M; dtmin[t >> 1].key > k && t > 0; t >>= 1) dtmin[t >> 1] = dtmin[t]; } int main() { ios::sync_with_stdio (false); cin >> n >> d; cin>>x; M = n; int tem = 0; for (int k = M; k; tem++, k >>= 1) ; M = 1 << tem; for (int i = 0; i < (M << 1) + 10; i++) { dtmax[i].key = 0 , dtmin[i].key = (1LL << 60); dtmax[i].pos = i - M, dtmin[i].pos = i - M; } dtmax[1].key = dtmin[1].key = x; t = f[1] = 1; modify (t, x, 1); for (int i = 2,k; i <= n; i++) { cin >> x; if (k = Searchmax (1, x) ) if (f[i] < k + 1) f[i] = k + 1, pre[i] = namax[k]; if ((k = Searchmin (1, x))) if (f[i] < k + 1) f[i] = k + 1, pre[i] = namin[k]; if (f[i] > t) t = f[i]; if (f[i] == 0) f[i] = 1; modify (f[i], x, i); } cout << t << endl; int p = -1; for (int i = 1; i <= n; i++) if (f[i] == t) { p = i; break; } for (int i = t; i; i--) ans[i] = p, p = pre[p]; for (int i = 1; i <= t; i++) cout << ans[i] << ' '; }
