제출 #531689

#제출 시각아이디문제언어결과실행 시간메모리
531689EqualTurtle버섯 세기 (IOI20_mushrooms)C++14
99.56 / 100
10 ms332 KiB
#include<bits/stdc++.h> #include "mushrooms.h" #define notw (which+1)%2 #define zero1 sure[which][0] #define zero2 sure[which][1] #define zero3 sure[which][2] #define zero4 sure[which][3] #define one1 sure[notw][0] #define A counter #define B counter+1 #define C counter+2 #define D counter+3 #define E counter+4 using namespace std; constexpr int maxk = 120; vector <int> sure[2]; int res = 0; int which, counter; void assign(vector <int> v, int st) { for (int i = 0; i < (int)v.size(); i++) sure[which ^ v[i]].push_back(st + i); } void quick_update() { which = (sure[0].size() >= sure[1].size() ? 0 : 1); counter = sure[0].size() + sure[1].size(); } void debug() { for (int i : sure[0]) cout << i << " "; cout << "\n"; for (int i : sure[1]) cout << i << " "; cout << "\n"; cout << "-----------------\n"; } void first_two() { vector <int> arr = {0, 1}; int curr = use_machine(arr); if (!curr){ sure[0].push_back(1); return; } sure[1].push_back(1); arr = {0, 2}; curr = use_machine(arr); if (curr == 0) sure[0].push_back(2); else sure[1].push_back(2); } void phase1_1(int k) { quick_update(); while (((int)sure[which].size() < 4 || (int)sure[notw].size() == 0) && ((int)sure[which].size() <= k)) // untill i have 4 zeros and 1 one { //vector <int> arr = {zero1, A, B, C, D, zero2, E}; int curr = use_machine({zero1, A, B, C, D, zero2, E}); if (curr == 0) assign({0, 0, 0, 0, 0}, A); else{ assign({curr % 2}, E); curr = use_machine({zero1, A, zero2, B}); assign({curr / 2, curr % 2}, A); curr = use_machine({zero1, C, zero2, D}); assign({curr / 2, curr % 2}, C); } quick_update(); } } void phase1_2(int k) { quick_update(); while ((int)sure[which].size() <= k) // untill i have k zeros or ones { int curr = use_machine({A, zero1, B, zero2, C, D, one1, E}); if (curr == 1){ curr = use_machine({zero1, C, zero2, D}); assign({0, 0, curr / 2, curr % 2, 1}, A); } else if (curr == 2){ curr = use_machine({zero1, C, zero2, D, zero3, E}); assign({curr % 2, 0, curr >= 4, curr >= 2, curr % 2}, A); } else if (curr == 3){ curr = use_machine({C, zero1, B, zero2, E, zero3, D}); if (curr == 3) assign({0, 0, 1, 0, 1}, A); else assign({curr < 3, curr > 3, (curr % 4) == 2, (curr % 4) != 0, curr > 3}, A); } else if (curr == 4){ curr = use_machine({C, zero1, A, zero2, D, zero3, E, zero4}); assign({curr / 4, (curr % 4) != 1, curr % 2, (curr % 4) / 2, curr / 4}, A); } else if (curr == 5){ curr = use_machine({A, zero1, C, zero2, D, zero3, E, zero4, B}); assign({curr != 5, curr != 3, (curr != 2 && curr != 4), (curr == 6 || curr == 4), curr == 5}, A); } else if (curr == 6){ curr = use_machine({zero1, A}); assign({curr, 1, 1, 0, curr}, A); } else // curr == 7 assign({1, 1, 1, 0, 0}, A); quick_update(); } } void phase2(int n) { quick_update(); while (counter < n) { int siz = min(n - counter, (int)sure[which].size()); vector <int> arr; for (int i = 0; i < siz; i++){ arr.push_back(sure[which][i]); arr.push_back(counter + i); } int curr = use_machine(arr); sure[(which ^ (curr % 2))].push_back(counter + siz - 1); res += (which == 0 ? siz - curr / 2 - 1 : curr/2); //quick_update(); which = (sure[0].size() >= sure[1].size() ? 0 : 1); counter += siz; } res += (int)sure[0].size(); } int count_mushrooms(int n) { // corner case if (n == 2){ vector <int> arr = {0, 1}; int curr = use_machine(arr); if (curr == 0) curr = 2; return curr; } sure[0].push_back(0); first_two(); phase1_1(min(n/2 - 5, maxk)); phase1_2(min(n/2 - 5, maxk)); phase2(n); return res; }
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