結果
問題 | No.1930 XOR of Two Range |
ユーザー | akua |
提出日時 | 2023-04-19 18:27:13 |
言語 | C++17 (gcc 12.3.0 + boost 1.83.0) |
結果 |
TLE
|
実行時間 | - |
コード長 | 6,448 bytes |
コンパイル時間 | 6,153 ms |
コンパイル使用メモリ | 235,564 KB |
実行使用メモリ | 40,320 KB |
最終ジャッジ日時 | 2024-10-14 19:48:05 |
合計ジャッジ時間 | 9,522 ms |
ジャッジサーバーID (参考情報) |
judge5 / judge4 |
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テストケース
テストケース表示入力 | 結果 | 実行時間 実行使用メモリ |
---|---|---|
testcase_00 | AC | 157 ms
39,808 KB |
testcase_01 | TLE | - |
testcase_02 | -- | - |
testcase_03 | -- | - |
ソースコード
#pragma GCC target("avx2") #pragma GCC optimize("O3") #pragma GCC optimize("unroll-loops") #include <atcoder/all> #include <iostream> // cout, endl, cin #include <string> // string, to_string, stoi #include <vector> // vector #include <algorithm> // min, max, swap, sort, reverse, lower_bound, upper_bound #include <utility> // pair, make_pair #include <tuple> // tuple, make_tuple #include <cstdint> // int64_t, int*_t #include <cstdio> // printf #include <map> // map #include <queue> // queue, priority_queue #include <set> // set #include <stack> // stack #include <deque> // deque #include <unordered_map> // unordered_map #include <unordered_set> // unordered_set #include <bitset> // bitset #include <cctype> // isupper, islower, isdigit, toupper, tolower #include <math.h> #include <iomanip> #include <functional> using namespace std; using namespace atcoder; #define rep(i, n) for (int i = 0; i < (int)(n); i++) #define repi(i, a, b) for (int i = (int)(a); i < (int)(b); i++) typedef long long ll; typedef unsigned long long ull; const ll inf=1e18; using graph = vector<vector<int> > ; using P= pair<ll,ll>; using vi=vector<int>; using vvi=vector<vi>; using vll=vector<ll>; using vvll=vector<vll>; using vp=vector<P>; using vvp=vector<vp>; using vd=vector<double>; using vvd =vector<vd>; //string T="ABCDEFGHIJKLMNOPQRSTUVWXYZ"; //string S="abcdefghijklmnopqrstuvwxyz"; //g++ main.cpp -std=c++17 -I . //cout <<setprecision(20); //cout << fixed << setprecision(10); //cin.tie(0); ios::sync_with_stdio(false); const double PI = acos(-1); int vx[]={0,1,0,-1,-1,1,1,-1},vy[]={1,0,-1,0,1,1,-1,-1}; void putsYes(bool f){cout << (f?"Yes":"No") << endl;} void putsYES(bool f){cout << (f?"YES":"NO") << endl;} void putsFirst(bool f){cout << (f?"First":"Second") << endl;} void debug(int test){cout << "TEST" << " " << test << endl;} ll pow_pow(ll x,ll n,ll mod){ if(n==0) return 1; x%=mod; ll res=pow_pow(x*x%mod,n/2,mod); if(n&1)res=res*x%mod; return res; } ll gcd(ll x,ll y){ if(y==0)return x; return gcd(y,x%y); } ll lcm(ll x,ll y){ return ll(x/gcd(x,y))*y; } template<class T> bool chmin(T& a, T b) { if (a > b) { a = b; return true; } else return false; } template<class T> bool chmax(T& a, T b) { if (a < b) { a = b; return true; } else return false; } // https://youtu.be/L8grWxBlIZ4?t=9858 // https://youtu.be/ERZuLAxZffQ?t=4807 : optimize // https://youtu.be/8uowVvQ_-Mo?t=1329 : division ll mod =998244353; //ll mod =1e9+7; struct mint { ll x; // typedef long long ll; mint(ll x=0):x((x%mod+mod)%mod){} mint operator-() const { return mint(-x);} mint& operator+=(const mint a) { if ((x += a.x) >= mod) x -= mod; return *this; } mint& operator-=(const mint a) { if ((x += mod-a.x) >= mod) x -= mod; return *this; } mint& operator*=(const mint a) { (x *= a.x) %= mod; return *this;} mint operator+(const mint a) const { return mint(*this) += a;} mint operator-(const mint a) const { return mint(*this) -= a;} mint operator*(const mint a) const { return mint(*this) *= a;} mint pow(ll t) const { if (!t) return 1; mint a = pow(t>>1); a *= a; if (t&1) a *= *this; return a; } // for prime mod mint inv() const { return pow(mod-2);} mint& operator/=(const mint a) { return *this *= a.inv();} mint operator/(const mint a) const { return mint(*this) /= a;} }; istream& operator>>(istream& is, const mint& a) { return is >> a.x;} ostream& operator<<(ostream& os, const mint& a) { return os << a.x;} // combination mod prime // https://www.youtube.com/watch?v=8uowVvQ_-Mo&feature=youtu.be&t=1619 struct combination { vector<mint> fact, ifact; combination(int n):fact(n+1),ifact(n+1) { //assert(n < mod); fact[0] = 1; for (int i = 1; i <= n; ++i) fact[i] = fact[i-1]*i; ifact[n] = fact[n].inv(); for (int i = n; i >= 1; --i) ifact[i-1] = ifact[i]*i; } mint operator()(int n, int k) { if (k < 0 || k > n) return 0; if (n<0) return 0; return fact[n]*ifact[k]*ifact[n-k]; } mint p(int n, int k) { return fact[n]*ifact[n-k]; } } c(2000000); using vm=vector<mint> ; using vvm=vector<vm> ; struct edge{ int to; ll cost; edge(int to,ll cost) : to(to),cost(cost){} }; using ve=vector<edge>; using vve=vector<ve>; struct Compress{ vll a; map<ll,ll> d,d2; int cnt; Compress() :cnt(0) {} void add(ll x){a.push_back(x);} void init(){ set<ll>s(a.begin(),a.end()); for(auto y:s)d[y]=cnt++; for(auto&y:a)y=d[y]; for(auto u:d)d2[u.second]=u.first; } ll to(ll x){return d[x];} //変換先 ll from(ll x){return d2[x];}//逆引き int size(){return cnt;} }; //vll anss; vll anss; const int N=51; ll dp[N+1][3][3][3][3][2]; ll dpsum[N+1][3][3][3][3][2]; ll pow2[N+1]; vi l,r,lr; void solve(int test){ if(test==0){ pow2[0]=1; for(int i=1; i<=N; i++)pow2[i]=pow2[i-1]*2; } ll L,R; cin >> L >> R; ll LR=L+R; l.clear(); r.clear(); lr.clear(); while(L){ l.push_back(L%2); L/=2; } while(R){ r.push_back(R%2); R/=2; } while(LR){ lr.push_back(LR%2); LR/=2; } { int sl=l.size(); rep(i,N-sl)l.push_back(0); int sr=r.size(); rep(i,N-sr)r.push_back(0); int slr=lr.size(); rep(i,N-slr)lr.push_back(0); } rep(i,N+1)rep(j,3)rep(k,3)rep(m,3)rep(x,3)rep(y,2)dp[i][j][k][m][x][y]=0; rep(i,N+1)rep(j,3)rep(k,3)rep(m,3)rep(x,3)rep(y,2)dpsum[i][j][k][m][x][y]=0; dp[0][0][0][0][0][0]=1; rep(i,N)rep(j,3)rep(k,3)rep(m,3)rep(x,3)rep(y,2){ ll now=dp[i][j][k][m][x][y]; ll nowsum=dpsum[i][j][k][m][x][y]; rep(nowi,2)rep(nowj,2){ int ni=i+1; int nj=j; int nk=k; int nm=m; int nx=x; int ny=y; int nowij=(y+nowi+nowj)%2; if(nowi>l[i])nj=1; if(nowi<l[i])nj=2; if(nowj<r[i])nk=1; if(nowj>r[i])nk=2; if(nowi<nowj)nm=1; if(nowi>nowj)nm=2; if(nowij<lr[i])nx=1; if(nowij>lr[i])nx=2; ny=(y+nowi+nowj)/2; dp[ni][nj][nk][nm][nx][ny]+=now; dp[ni][nj][nk][nm][nx][ny]%=2; dpsum[ni][nj][nk][nm][nx][ny]^=(nowsum+now*nowij*pow2[i]); } } ll ans=0; rep(j,2)rep(k,2)rep(m,2)rep(x,2){ ans^=dpsum[N][j][k][m][x][0]; } anss.push_back(ans); } //g++ main.cpp -std=c++17 -I . int main(){cin.tie(0);ios::sync_with_stdio(false); int t=1;cin >> t; rep(test,t)solve(test); for(auto u:anss)cout << u << endl; }