結果
| 問題 | No.2665 Minimize Inversions of Deque |
| ユーザー |
 Be11T_
|
| 提出日時 | 2024-03-08 21:55:49 |
| 言語 | C++17 (gcc 12.3.0 + boost 1.83.0) |
| 結果 |
AC
|
| 実行時間 | 96 ms / 2,000 ms |
| コード長 | 2,762 bytes |
| コンパイル時間 | 3,883 ms |
| コンパイル使用メモリ | 266,800 KB |
| 実行使用メモリ | 6,676 KB |
| 最終ジャッジ日時 | 2024-03-08 21:56:14 |
| 合計ジャッジ時間 | 8,209 ms |
|
ジャッジサーバーID (参考情報) |
judge14 / judge12 |
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テストケース
テストケース表示| 入力 | 結果 | 実行時間 実行使用メモリ |
|---|---|---|
| testcase_00 | AC | 1 ms
6,676 KB |
| testcase_01 | AC | 90 ms
6,676 KB |
| testcase_02 | AC | 88 ms
6,676 KB |
| testcase_03 | AC | 83 ms
6,676 KB |
| testcase_04 | AC | 83 ms
6,676 KB |
| testcase_05 | AC | 81 ms
6,676 KB |
| testcase_06 | AC | 82 ms
6,676 KB |
| testcase_07 | AC | 81 ms
6,676 KB |
| testcase_08 | AC | 96 ms
6,676 KB |
| testcase_09 | AC | 82 ms
6,676 KB |
| testcase_10 | AC | 83 ms
6,676 KB |
| testcase_11 | AC | 81 ms
6,676 KB |
| testcase_12 | AC | 81 ms
6,676 KB |
| testcase_13 | AC | 81 ms
6,676 KB |
| testcase_14 | AC | 82 ms
6,676 KB |
| testcase_15 | AC | 80 ms
6,676 KB |
| testcase_16 | AC | 81 ms
6,676 KB |
| testcase_17 | AC | 82 ms
6,676 KB |
| testcase_18 | AC | 93 ms
6,676 KB |
| testcase_19 | AC | 14 ms
6,676 KB |
| testcase_20 | AC | 3 ms
6,676 KB |
| testcase_21 | AC | 3 ms
6,676 KB |
| testcase_22 | AC | 2 ms
6,676 KB |
| testcase_23 | AC | 3 ms
6,676 KB |
| testcase_24 | AC | 3 ms
6,676 KB |
| testcase_25 | AC | 2 ms
6,676 KB |
| testcase_26 | AC | 3 ms
6,676 KB |
| testcase_27 | AC | 3 ms
6,676 KB |
| testcase_28 | AC | 2 ms
6,676 KB |
| testcase_29 | AC | 3 ms
6,676 KB |
| testcase_30 | AC | 45 ms
6,676 KB |
| testcase_31 | AC | 42 ms
6,676 KB |
| testcase_32 | AC | 42 ms
6,676 KB |
| testcase_33 | AC | 43 ms
6,676 KB |
| testcase_34 | AC | 40 ms
6,676 KB |
| testcase_35 | AC | 40 ms
6,676 KB |
| testcase_36 | AC | 42 ms
6,676 KB |
| testcase_37 | AC | 40 ms
6,676 KB |
| testcase_38 | AC | 43 ms
6,676 KB |
| testcase_39 | AC | 46 ms
6,676 KB |
ソースコード
#include <atcoder/all>
using namespace atcoder;
#include <bits/stdc++.h>
#pragma GCC optimize("O3")
//#pragma GCC optimize("unroll-loops")
#define rep(i, n) for(ll i = 0; i < n; i++)
#define rep2(i, m, n) for(ll i = m; i <= n; i++)
#define rrep(i, m, n) for(ll i = m; i >= n; i--)
#define all(a) a.begin(), a.end()
#define rall(a) a.rbegin(), a.rend()
#define MAX(x) *max_element(all(x))
#define MIN(x) *min_element(all(x))
#define SZ(a) ((ll)(a).size())
#define bit(n, k) ((n >> k) & 1)
using namespace std;
using ll = long long;
using P = pair<ll, ll>;
const int dx[4] = { -1, 0, 1, 0};
const int dy[4] = { 0, 1, 0, -1};
const int inf = 1e9 + 7;
const ll infll = 1e18;
//const double pi = acos(-1);
using Graph = vector<vector<ll>>;
using REV_PQ = priority_queue<ll, vector<ll>, greater<ll>>;
using PQ = priority_queue<ll>;
const int SIZE = 400010;
ll powll(ll n, ll x) {
// return n ^ x;
ll ret = 1;
rep(i, x) ret *= n;
return ret;
}
ll ceil(ll x, ll m){
if(m < 0) x = -x, m = -m;
if(x >= 0) return (x + m - 1) / m;
else return x / m;
}
ll floor(ll x, ll m){
if(m < 0) x = -x, m = -m;
if(x >= 0) return x / m;
else return (x - m + 1) / m;
}
void OutputYesNo(bool val) {
if (val) cout << "Yes" << endl;
else cout << "No" << endl;
}
void OutputTakahashiAoki(bool val) {
if (val) cout << "Takahashi" << endl;
else cout << "Aoki" << endl;
}
void OutPutInteger(ll x) { cout << x << endl; }
void OutPutString(string x) { cout << x << endl; }
int pop_count(ll n){
int ret = 0;
while(n > 0){
if(n % 2 == 1) ret++;
n /= 2;
}
return ret;
}
bool inrange(ll from, ll to, ll val){
// from <= val <= to であれば、trueを返す
return from <= val && val <= to;
}
using PAIR_REV_PQ = priority_queue<pair<ll, ll>, vector<pair<ll, ll>>, greater<pair<ll, ll>>>;
//typedef atcoder::modint998244353 mint;
//typedef atcoder::modint1000000007 mint;
//typedef modint mint;
//typedef vector<mint> ModintVec;
//typedef vector<Modin
int main(){
ios::sync_with_stdio(false);
cin.tie(nullptr);
int t; cin >> t;
while(t--){
int n; cin >> n;
vector<int> p(n);
rep(i, n){
cin >> p[i];
p[i]--;
}
ll ans = 0;
deque<int> res;
fenwick_tree<ll> ft(n);
rep(i, n){
if(ft.sum(0, p[i] + 1) < ft.sum(p[i] + 1, n)){
res.push_front(p[i]);
ans += ft.sum(0, p[i] + 1);
}else{
res.push_back(p[i]);
ans += ft.sum(p[i] + 1, n);
}
ft.add(p[i], 1);
}
cout << ans << endl;
for(auto v : res) cout << v + 1 << " ";
cout << endl;
}
}