Submission #1127373

#TimeUsernameProblemLanguageResultExecution timeMemory
1127373enzyRice Hub (IOI11_ricehub)C++20
0 / 100
0 ms324 KiB
// aaaa oj pfv me deixe submeter #include "ricehub.h" #include<bits/stdc++.h> #define ll long long using namespace std; const ll inf=1e18+10; const int maxn=1e5+10; ll v[maxn], sp[maxn], n; bool check(int x, ll lim){ int tirar=n-x; ll cost=inf; for(int i=0;i<=tirar;i++){ // vou checar se os i primeiros caras n existem e os x-i ultimos caras n existem tbm // o "1" vai ser o 1+i, e o "n", sera o n-(x-i); // portanto a mediana será: piso(((1+i)+(n-(x-i))+1)/2) ll opt=((1+i)+(n-(x-i))+1)/2; ll at=v[opt]*(opt-i)-(sp[opt]-sp[i])+(sp[n-(tirar-i)]-sp[opt])-v[opt]*(n-(tirar-i)-opt); // o custo eh |v[opt]-v[j]|, sendo 1+i<=j<=(n-(x-i)) // temos q se j<=opt => |v[opt]-v[j]|=v[opt]-v[j] (ou seja: qtd*v[opt]-soma de todos menores) // e caso contrário (j>opt)=>|v[opt]-v[j]|=v[j]-v[opt] (ou seja: soma dos maiores-qtd*v[opt]) cost=min(cost,at); } return cost<=lim; } int besthub(int R, int L, int X[], ll B) { n=R; for(int i=1;i<=n;i++) v[i]=X[i-1]; for(int i=1;i<=n;i++) sp[i]=sp[i-1]+v[i]; int l=1, r=n; while(l<r){ int mid=(l+r+1)/2; if(check(mid,B)) l=mid; else r=mid-1; } return l; }
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