Submission #941609

#TimeUsernameProblemLanguageResultExecution timeMemory
941609XiaoyangA Difficult(y) Choice (BOI21_books)C++17
0 / 100
1 ms608 KiB
#include "books.h" #include <bits/stdc++.h> using namespace std; typedef long long ll; #define fi first #define se second #define pll pair<ll,ll> #define pb push_back #define debug(x) cerr<<#x<<"="<<x<<endl; #define MP make_pair #define rep(i,a,b) for(ll i=a;i<b;i++) #define SZ(x) (ll)x.size() #define ALL(x) x.begin(),x.end() #define endl "\n" const ll inf=1e18; const ll maxn=1e5+5; ll diff[maxn]; ll d(ll x){ if(diff[x])return diff[x]; return diff[x]=skim(x); } void solve(int n, int k, long long A, int s) { ll sum=0; vector<int>ans; rep(i,1,n+1){ if(i<=k)sum+=d(i),ans.pb(i); } if(sum>2*A)impossible(); if(sum>=A)answer(ans); // the sum of the first k elements is def lesser than A //if >=A and <=2A we would have alr answered //if >2A its def impossible //if we find the largest index of element that is lesser than A ll lo=1,hi=n; while(lo<hi){ ll mid=(lo+hi+1)>>1; if(d(mid)<=A)lo=mid; else hi=mid-1; } //lo+1 is more than A, check if >A + <A <=2A if(lo+1<=n and sum-d(k)+d(lo+1)<=2*A){ ans[k-1]=lo+1; answer(ans); } //if not uhhh :think //greedy? //since lo is like less than A, and everything in the [1,k] is def<A //going from [1,k] to [2,k]U[lo] will def be <=2A //but if this continues we might get to >A eventually? //but as soon as its more than A we are done? //if it ever gets to >=A then we just check its <=2A? //if we do liddis i dont think we will have chance to exceed 2A??? ll id=1; while(id<=k and lo>0){ if(sum>=A){ answer(ans); } ans[id-1]=lo; sum-=d(id); sum+=d(lo); id++; lo--; } impossible(); }
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