QOJ.ac
QOJ
ID | Problem | Submitter | Result | Time | Memory | Language | File size | Submit time | Judge time |
---|---|---|---|---|---|---|---|---|---|
#585883 | #5415. Ropeway | PonyHex | TL | 20ms | 7944kb | C++20 | 2.8kb | 2024-09-23 22:39:58 | 2024-09-23 22:39:59 |
Judging History
answer
#include<bits/stdc++.h>
#include<unordered_map>
#include<unordered_set>
using namespace std;
#define ll long long
#define double long double
#define lc u<<1
#define rc u<<1|1
#define X first
#define Y second
//#define int long long
const int N = 5e5 + 50;
const int M = 5e5 + 5;
const ll maxm = 1e18 + 5;
const ll mod = 998244353;
int dx[] = { -1,0,1,0 };
int dy[] = { 0,1,0,-1 };
//random_shuffle(id + 1, id + n + 1);
ll ksm(ll a, ll b);
ll gcd(ll a, ll b);
ll n, k, Q;
ll a[N];
string str;
ll dp[N] = { 0 };//表示在以第i个位置结尾的最小代价
ll ddp[N];
void solve()
{
//感觉就是个dp,但是这n,q有点太大了点,
//对于每个q都用n的复杂度跑,感觉会t
//但是之前,我们已经获取了一部分,(在更改的元素之前的序列)
//那部分,我们是可以接着用的,每次我们从那个地方开始,能优化一下
//试试
//怎么还有位置是要必须建,等等还有这种好事
//为1的位置相当于把整个数列进行了划分
//到单点修改导致的决策影响仅能影响到下一个一的位置
//在往后的决策都直接加上前置的决策即可
//写的一坨,思路比较纯实现还不好,单调队列能维护出n的复杂度求
//先改一发试试
priority_queue < pair<ll, ll>, vector<pair<ll, ll> >, greater<pair<ll, ll> > >q;
cin >> n >> k;
for (int i = 1; i <= n; i++)cin >> a[i];
cin >> str; str = "1" + str; str = str + "1"; a[n + 1] = 0; a[0] = 0;
q.push({ 0,0 }); dp[0] = 0;
for (int i = 1; i <= n+1; i++) {
while (q.size() && i - q.top().Y > k)q.pop();
dp[i] = q.top().X + a[i];
if (str[i] == '1') {
while (q.size())q.pop();
}
q.push({ dp[i],i });
}
while (q.size())q.pop();
cin >> Q;
for (int i = 1; i <= Q; i++) {
ll pos, val; cin >> pos >> val;
//单点修改以后可怎么搞
//总不能再跑完,试试,要不
if (str[pos] == '1') {
cout << dp[n + 1] + (-a[pos] + val) << endl; continue;
}
for (int ii = max(0ll, pos - k); ii < pos; ii++) {
if (str[ii] == '1') {
while (q.size())q.pop();
}
q.push({ dp[ii],ii });
}
q.push({ dp[pos] - a[pos] + val,pos });
for (int ii = pos + 1; ii <= n + 1; ii++) {
while (q.size() && ii - q.top().Y > k)q.pop();
ddp[ii] = q.top().X + a[ii];
if (str[ii] == '1') {
while (q.size())q.pop();
}
q.push({ ddp[ii],ii });
}
while (q.size())q.pop();
cout << ddp[n + 1] << endl;
}
return;
}
signed main()
{
ios::sync_with_stdio(false);
cin.tie(0), cout.tie(0);
int T = 1;
cin >> T;
while (T--)
solve();
return 0;
}
/*PonyHex*/
ll ksm(ll a, ll b) {
ll base = a;
ll ans = 1;
while (b) {
if (b & 1)ans *= base % mod;
ans %= mod;
base *= base; base %= mod;
b >>= 1;
}
return ans % mod;
}
ll gcd(ll a, ll b) {
return b ? gcd(b, a % b) : a;
}
Details
Tip: Click on the bar to expand more detailed information
Test #1:
score: 100
Accepted
time: 1ms
memory: 7944kb
input:
3 10 3 5 10 7 100 4 3 12 5 100 1 0001000010 2 2 3 6 15 5 6 1 1 1 1 1 00000 1 3 100 5 6 1 1 1 1 1 00100 1 3 100
output:
206 214 0 100
result:
ok 4 number(s): "206 214 0 100"
Test #2:
score: 0
Accepted
time: 4ms
memory: 7652kb
input:
500 19 6 285203460 203149294 175739375 211384407 323087820 336418462 114884618 61054702 243946442 19599175 51974474 285317523 222489944 26675167 300331960 1412281 324105264 33722550 169011266 1111111110110100011 18 3 127056246 5 100630226 14 301161052 2 331781882 5 218792226 2 190274295 12 49227476 ...
output:
2472886431 2299111966 2796055445 2650202148 2417273966 2508694561 2285479513 2521569560 2521569560 2240907690 2577284958 2521569560 2766700195 2511807344 2521569560 2438434986 2669077215 2682112324 470735446 470735446 211705888 564509290 715543137 470735446 470735446 18 19 19 19 20 19 54 849950346 8...
result:
ok 5277 numbers
Test #3:
score: 0
Accepted
time: 20ms
memory: 7660kb
input:
50 183 160 22617237 21369258 39718669 4582413 28629717 25947766 1690897 19844235 35568283 42909820 21829213 70588436 8472484 53107624 21547259 11440081 6630789 5896457 19770793 30204510 29796593 27689811 39350369 21646987 36362667 38164292 13428410 54681069 24526477 58941286 70890011 43730474 388615...
output:
5303746210 5262479222 5346682277 5299354906 5290045662 5350552810 5343191051 5268759163 5299354906 5340227887 5299354906 5253956732 5289945955 5230918240 5287812187 5299354906 5299354906 5273800386 5299354906 5299354906 5353471727 5283662384 5230330060 5319166005 5338060400 5304825609 5268929476 526...
result:
ok 9541 numbers
Test #4:
score: -100
Time Limit Exceeded
input:
3 500000 891 806445768 895003544 461699845 184479965 853541910 593542573 667984604 465354540 303586741 243665567 285056069 294245042 675066412 456713460 215929340 756894934 773828574 317143965 451366539 891390118 436168373 633752416 78781758 298770626 35280548 226923750 96421159 523108871 265102517 ...
output:
5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 5202946193 520...