제출 #1078080

#제출 시각아이디문제언어결과실행 시간메모리
1078080anango카니발 티켓 (IOI20_tickets)C++17
53 / 100
1144 ms168680 KiB
#include "tickets.h" #include <vector> #include <bits/stdc++.h> using namespace std; #define int long long vector<vector<signed>> intify(vector<vector<int>> res) { vector<vector<signed>> ans(res.size(),vector<signed>(res[0].size())); for (int i=0; i<res.size(); i++) { for (int j=0; j<res[0].size(); j++) { ans[i][j] = res[i][j]; } } return ans; } long long find_maximum(signed k, std::vector<std::vector<signed>> x) { //need to fill the grid with + and - //exactly k of these in each row //such that the total sum of + minus total sum of - is maximised //so if we let the possible moves for each row be a set S, each element is {a,b} //a is the increase in total sum of + minus total sum of - //and b is the total change to the balance (number of + minus number of -) //then effectively in each row we need to process these moves in a dp //like if we let dp[i][balance] be the maximum answer after doing the first i rows with balance + minus - count //the balance can be upto nk/2 = O(n^2), so O(n^3) states and thusforely O(n^4) time complexity //passes for 63 //try optimise to O(n^3) //randomise order of rows processed and hope the balance value doesn't become large in the optimal sol? //actually quite reasonable //if we consider worst case where everything is extreme so it's +-k each time //then by random walk theory the EV of |balance| is like k*sqrt(n) //so it goes from n^4 to n^3.5... probably not enough to pass //what if instead we bruteforce over the split point where stuff goes from minus to plus //doesn't help //what about starting by taking all plus (k pluses per row, take largest) //and slowly converting to minus, losing the minimal each time //not sure how to prove it works but whatever just implement //probably works because the costs in one row are increasing int n = x.size(); int m = x[0].size(); vector<vector<int>> answer(n,vector<int>(m,-1)); vector<vector<int>> increasing_order(n,vector<int>(m)); //the indices sorted in increasing order of value for (int i=0; i<n; i++) { iota(increasing_order[i].begin(), increasing_order[i].end(), (int)0); sort(increasing_order[i].begin(), increasing_order[i].end(), [&](const int i1, const int i2) { return x[i][i1]<x[i][i2]; }); } vector<int> opsdone(n,0); //num of ops done in the ith row so far int cursum = 0; priority_queue<pair<int,int>> deltas; //with cost of -a, we can apply one greedy operation to row i for (int i=0; i<n; i++) { for (int j=m-k; j<m; j++) { //cout << i <<" " << j << endl; cursum+=x[i][increasing_order[i][j]]; answer[i][j] = -2; } pair<int,int> p = {-x[i][m-k]-x[i][0],i}; //cout << "start " << i <<" " << p.first <<" " << p.second << endl; deltas.push(p); } int ctreq = n*k/2; while (ctreq>0) { assert(deltas.size()); pair<int,int> p = deltas.top(); deltas.pop(); //smallest cost //cout << "doing1 " << p.first <<" " << p.second << endl; int cost = -p.first; int ind = p.second; cursum-=cost; answer[ind][increasing_order[ind][m-k+opsdone[ind]]] = -1; answer[ind][increasing_order[ind][opsdone[ind]]] = -3; opsdone[ind]++; //now we need to remove index n-k+1+opsdone[ind] and re-add index opsdone[ind] if (opsdone[ind]<k) { //cout << "costing " << -x[ind][increasing_order[ind][m-k+opsdone[ind]]]-x[ind][increasing_order[ind][opsdone[ind]]] <<" " << opsdone[ind] << endl; deltas.push({-x[ind][increasing_order[ind][m-k+opsdone[ind]]]-x[ind][increasing_order[ind][opsdone[ind]]],ind}); } ctreq--; //cout << "doing2 " << ctreq <<" " << cursum << endl; } int m2ct = 0; int m3ct = 0; for (int i=0; i<n; i++) { for (int j=0; j<m; j++) { //cout << answer[i][j] <<" "; m2ct+=answer[i][j]==-2; m3ct+=answer[i][j]==-3; } //cout << endl; } assert(m2ct==n*k/2 && m3ct==n*k/2); /*vector<vector<int>> elems; for (int i=0; i<n; i++) { for (int j=0; j<m; j++) { elems.push_back({x[i][j],i,j}); } } sort(elems.begin(), elems.end()); int mid = n*m/2; for (int i=0; i<mid; i++) { answer[elems[i][1]][elems[i][2]] = -2; //minus }*/ int sol = 0; for (int i=0; i<n; i++) { for (int j=0; j<m; j++) { if (answer[i][j]==-2) { sol+=x[i][j]; } else if (answer[i][j]==-3) { sol-=x[i][j]; } } } //-2 is plus, -3 is minus vector<set<int>> minus_rem(n); vector<set<int>> plus_rem(n); for (int i=0; i<n; i++) { for (int j=0; j<m; j++) { if (answer[i][j]==-2) { plus_rem[i].insert(j); } else if (answer[i][j]==-3) { minus_rem[i].insert(j); } } } for (int op=0; op<k; op++) { int balance = 0; set<int> rem; for (int i=0; i<n; i++) { if (!plus_rem[i].size()) { answer[i][*minus_rem[i].begin()] = op; minus_rem[i].erase(minus_rem[i].begin()); balance--; } else if (!minus_rem[i].size()) { answer[i][*plus_rem[i].begin()] = op; plus_rem[i].erase(plus_rem[i].begin()); balance++; } else { rem.insert(i); } } for (int i:rem) { if (balance>=0) { answer[i][*minus_rem[i].begin()] = op; minus_rem[i].erase(minus_rem[i].begin()); balance--; } else { answer[i][*plus_rem[i].begin()] = op; plus_rem[i].erase(plus_rem[i].begin()); balance++; } } } allocate_tickets(intify(answer)); return sol; }

컴파일 시 표준 에러 (stderr) 메시지

tickets.cpp: In function 'std::vector<std::vector<int> > intify(std::vector<std::vector<long long int> >)':
tickets.cpp:9:20: warning: comparison of integer expressions of different signedness: 'long long int' and 'std::vector<std::vector<long long int> >::size_type' {aka 'long unsigned int'} [-Wsign-compare]
    9 |     for (int i=0; i<res.size(); i++) {
      |                   ~^~~~~~~~~~~
tickets.cpp:10:24: warning: comparison of integer expressions of different signedness: 'long long int' and 'std::vector<long long int>::size_type' {aka 'long unsigned int'} [-Wsign-compare]
   10 |         for (int j=0; j<res[0].size(); j++) {
      |                       ~^~~~~~~~~~~~~~
#Verdict Execution timeMemoryGrader output
Fetching results...
#Verdict Execution timeMemoryGrader output
Fetching results...
#Verdict Execution timeMemoryGrader output
Fetching results...
#Verdict Execution timeMemoryGrader output
Fetching results...
#Verdict Execution timeMemoryGrader output
Fetching results...
#Verdict Execution timeMemoryGrader output
Fetching results...
#Verdict Execution timeMemoryGrader output
Fetching results...