제출 #751551

#제출 시각아이디문제언어결과실행 시간메모리
751551hanlulu은행 (IZhO14_bank)C++14
19 / 100
81 ms8500 KiB
//https://oj.uz/problem/view/IZhO14_bank #include <bits/stdc++.h> using namespace std; const int MOD = 1e9+7; int main() { //freopen("bank.in","r",stdin); //freopen("bank.out","w",stdout); int n, m; cin >> m >> n; vector< int > notes(n),salary(m); for (int i = 0; i < m ;i++) { cin >> salary[i]; } for (int i = 0; i < n ;i++) { cin >> notes[i]; } vector< pair<int,int> > dp(1<<n); /* dp[00001011b] ={x,y} means select first,second and 4th notes can satisfy first x people and also has y money left. we add new note as the last one to cover the current people. */ dp[0] = {0,0} ;//empty, dealing with salary[0],no money left. for (int s = 0; s < (1<<n); s++) { //cout << s << " " << dp[s].first << " " << dp[s].second << endl; //cout <<salary[dp[s].first] << endl; for (int i = 0 ;i < n; i++) { if ( (1<<i) & s ) //already has ith notes, skip continue; //try to finish people dp[s].first using current notes[i] if (salary[dp[s].first] == dp[s].second + notes[i])//just enough to pay { dp[(1<<i) | s].first = dp[s].first+1; dp[(1<<i) | s].second = 0; if (dp[(1<<i) | s].first == m && dp[(1<<i) | s].second == 0) { cout << "YES" << endl; return 0; } } else if (salary[dp[s].first] > dp[s].second + notes[i]) { dp[(1<<i) | s].first = dp[s].first; dp[(1<<i) | s].second += notes[i]; } //cout <<((1<<i) | s) <<" "<< dp[(1<<i) | s].first << " dp " << dp[(1<<i) | s].second << endl; //if bigger do nothing, as we can not use it. } } cout << "NO" << endl; return 0; }
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