제출 #129889

#제출 시각아이디문제언어결과실행 시간메모리
129889nikolapesic2802Gap (APIO16_gap)C++14
100 / 100
84 ms3308 KiB
/* -For subtask 1 just repeatedly find the next biggest and smallest number. -For subtask 2, find the biggest and the smallest number (cost will be N+1); -Now notice that the solution will be at least (r-l+1-n)/(n-1) rounded up. -We can split the search space into parts of that size and query for the biggest and smallest numbers. -We don't care if we have some gap/numbers inbetween the biggest and smallest numbers of a part since the gap can not be big enough to be the biggest. */ #include <bits/stdc++.h> #include <ext/pb_ds/assoc_container.hpp> #include <ext/pb_ds/tree_policy.hpp> #include <ext/rope> #include "gap.h" #define ll long long #define pb push_back #define sz(x) (int)(x).size() #define mp make_pair #define f first #define s second #define all(x) x.begin(), x.end() #define D(x) cerr << #x << " is " << (x) << "\n"; using namespace std; using namespace __gnu_pbds; using namespace __gnu_cxx; mt19937 rng(chrono::steady_clock::now().time_since_epoch().count()); template<class T> using ordered_set = tree<T, null_type, less<T>, rb_tree_tag,tree_order_statistics_node_update>; ///find_by_order(),order_of_key() template<class T1, class T2> ostream& operator<<(ostream& os, const pair<T1,T2>& a) { os << '{' << a.f << ", " << a.s << '}'; return os; } template<class T> ostream& operator<<(ostream& os, const vector<T>& a){os << '{';for(int i=0;i<sz(a);i++){if(i>0&&i<sz(a))os << ", ";os << a[i];}os<<'}';return os;} template<class T> ostream& operator<<(ostream& os, const set<T>& a) {os << '{';int i=0;for(auto p:a){if(i>0&&i<sz(a))os << ", ";os << p;i++;}os << '}';return os;} template<class T> ostream& operator<<(ostream& os, const multiset<T>& a) {os << '{';int i=0;for(auto p:a){if(i>0&&i<sz(a))os << ", ";os << p;i++;}os << '}';return os;} template<class T1,class T2> ostream& operator<<(ostream& os, const map<T1,T2>& a) {os << '{';int i=0;for(auto p:a){if(i>0&&i<sz(a))os << ", ";os << p;i++;}os << '}';return os;} ll findGap(int t,int n) { vector<ll> arr; ll l=0,r=1e18,a,b; if(t==1) { for(int i=0;i<(n+1)/2;i++) { MinMax(l,r,&a,&b); arr.pb(a); arr.pb(b); l=a+1; r=b-1; } } else { MinMax(l,r,&l,&r); ll deo=(r-l+1-n)/(n-1); if((r-l+1-n)%(n-1)) deo++; arr.pb(l); arr.pb(r); l++; r--; for(int i=0;i<n-1;i++) { ll le=l+(deo+5)*i,ri=min(r,l+(deo+5)*(i+1)-1); if(le>ri) continue; MinMax(le,ri,&a,&b); if(a!=-1) arr.pb(a),arr.pb(b); } } sort(all(arr)); ll sol=0; for(int i=0;i<(int)arr.size()-1;i++) sol=max(sol,arr[i+1]-arr[i]); return sol; }
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