結果
問題 | No.1298 OR XOR |
ユーザー | s0j1san |
提出日時 | 2021-01-20 11:39:01 |
言語 | C++14 (gcc 12.3.0 + boost 1.83.0) |
結果 |
AC
|
実行時間 | 2 ms / 2,000 ms |
コード長 | 6,875 bytes |
コンパイル時間 | 2,275 ms |
コンパイル使用メモリ | 186,836 KB |
実行使用メモリ | 6,820 KB |
最終ジャッジ日時 | 2024-12-22 21:36:42 |
合計ジャッジ時間 | 3,337 ms |
ジャッジサーバーID (参考情報) |
judge3 / 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 | 2 ms
6,820 KB |
testcase_01 | AC | 2 ms
6,816 KB |
testcase_02 | AC | 2 ms
6,820 KB |
testcase_03 | AC | 2 ms
6,816 KB |
testcase_04 | AC | 1 ms
6,816 KB |
testcase_05 | AC | 2 ms
6,820 KB |
testcase_06 | AC | 2 ms
6,816 KB |
testcase_07 | AC | 1 ms
6,820 KB |
testcase_08 | AC | 1 ms
6,820 KB |
testcase_09 | AC | 2 ms
6,820 KB |
testcase_10 | AC | 2 ms
6,820 KB |
testcase_11 | AC | 1 ms
6,820 KB |
testcase_12 | AC | 2 ms
6,816 KB |
testcase_13 | AC | 2 ms
6,816 KB |
コンパイルメッセージ
In file included from /home/linuxbrew/.linuxbrew/Cellar/gcc@12/12.3.0/include/c++/12/istream:39, from /home/linuxbrew/.linuxbrew/Cellar/gcc@12/12.3.0/include/c++/12/sstream:38, from /home/linuxbrew/.linuxbrew/Cellar/gcc@12/12.3.0/include/c++/12/complex:45, from /home/linuxbrew/.linuxbrew/Cellar/gcc@12/12.3.0/include/c++/12/ccomplex:39, from /home/linuxbrew/.linuxbrew/Cellar/gcc@12/12.3.0/include/c++/12/x86_64-pc-linux-gnu/bits/stdc++.h:54, from main.cpp:1: In member function 'std::basic_ostream<_CharT, _Traits>::__ostream_type& std::basic_ostream<_CharT, _Traits>::operator<<(long long int) [with _CharT = char; _Traits = std::char_traits<char>]', inlined from 'int main()' at main.cpp:210:9: /home/linuxbrew/.linuxbrew/Cellar/gcc@12/12.3.0/include/c++/12/ostream:202:25: warning: 'a' may be used uninitialized [-Wmaybe-uninitialized] 202 | { return _M_insert(__n); } | ~~~~~~~~~^~~~~ main.cpp: In function 'int main()': main.cpp:202:12: note: 'a' was declared here 202 | ll a,b,c; | ^
ソースコード
#include <bits/stdc++.h> #pragma GCC target("avx2") #pragma GCC optimize("Ofast") #pragma GCC optimize("unroll-loops") //#include <boost/multiprecision/cpp_int.hpp> using namespace std; //using namespace boost::multiprecision; //#include<atcoder/all> //#include<atcoder/segtree> //#include <atcoder/scc> //#include <atcoder/dsu> //using namespace atcoder; using dou =long double; string yes="yes"; string Yes="Yes"; string YES="YES"; string no="no"; string No="No"; string NO="NO"; template<class T> inline bool chmax(T& a, T b) { if (a < b) { a = b; return true; } return false; } template<class T> inline bool chmin(T& a, T b) { if (a > b) { a = b; return true; } return false; } typedef long long ll; typedef unsigned long long ull; typedef pair<int,int> P; typedef pair<ll,ll> PL; //ll mod = 998244353ll; ll mod = 1000000007ll; //ll mod; //const ll mod = 4; 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 modhttps://atcoder.jp/contests/abc166/submit?taskScreenName=abc166_f 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;} #define rep(i, n) for(ll i = 0; i < (ll)(n); i++) //#define rep(i, n) for(int i = 0; i < (int)(n); i++) #define brep(n) for(int bit=0;bit<(1<<n);bit++) #define bbrep(n) for(int bbit=0;bbit<(1<<n);bbit++) #define erep(i,container) for (auto &i : container) #define itrep(i,container) for (auto i : container) #define irep(i, n) for(ll i = n-1; i >= (ll)0ll; i--) #define rrep(i,m,n) for(ll i = m; i < (ll)(n); i++) #define reprep(i,j,h,w) rep(i,h)rep(j,w) #define repreprep(i,j,k,h,w,n) rep(i,h)rep(j,w)rep(k,n) #define all(x) (x).begin(),(x).end() #define rall(x) (x).rbegin(),(x).rend() #define VEC(type,name,n) std::vector<type> name(n);rep(i,n)std::cin >> name[i]; #define pb push_back #define pf push_front #define query int qq;std::cin >> qq;rep(qqq,qq) #define lb lower_bound #define ub upper_bound #define fi first #define se second #define itn int #define mp make_pair //#define sum(a) accumulate(all(a),0ll) #define keta fixed<<setprecision #define kout(d) std::cout << keta(10)<< d<< std::endl; #define vout(a) erep(qxqxqx,a)std::cout << qxqxqx << ' ';std::cout << std::endl; #define vvector(name,typ,m,n,a)vector<vector<typ> > name(m,vector<typ> (n,a)) //#define vvector(name,typ,m,n)vector<vector<typ> > name(m,vector<typ> (n)) #define vvvector(name,t,l,m,n,a) vector<vector<vector<t> > > name(l, vector<vector<t> >(m, vector<t>(n,a))); #define vvvvector(name,t,k,l,m,n,a) vector<vector<vector<vector<t> > > > name(k,vector<vector<vector<t> > >(l, vector<vector<t> >(m, vector<t>(n,a)) )); //#define case std::cout <<"Case #" <<qqq+1<<":" #define RES(a,iq,jq) a.resize(iq);rep(iii,iq)a[iii].resize(jq); #define RESRES(a,i,j,k) a.resize(i);rep(ii,i)a[ii].resize(j);reprep(ii,jj,i,j){a[ii][jj].resize(k);}; #define res resize #define as assign #define ffor for(;;) #define ppri(a,b) std::cout << a<<" "<<b << std::endl #define pppri(a,b,c) std::cout << a<<" "<<b <<" "<< c<<std::endl #define ppppri(a,b,c,d) std::cout << a<<" "<<b <<" "<< c<<' '<<d<<std::endl #define aall(x,n) (x).begin(),(x).begin()+(n) #define SUMI(a) accumulate(all(a),0) #define SUM(a) accumulate(all(a),0ll) #define stirng string #define gin(a,b) int a,b;std::cin >> a>>b;a--;b--; #define popcount __builtin_popcount #define permu(a) next_permutation(all(a)) #define aru(a,d) a.find(d)!=a.end() #define nai(a,d) a.find(d)==a.end() //#define aru p.find(mp(x,y))!=p.end() //#define grid_input(a,type) int h,w;std::cin >> h>>w;vvector(a,type,h,w,0);reprep(i,j,h,w)std::cin >> a[i][j]; //typedef long long T; ll ceili(ll a,ll b){ return ((a+b-1)/b); } const int INF = 2000000000; //const ll INF64 =922330720854775807ll; //const ll INF64 = 4223372036854775807ll; //const ll INF64 = 9223372036854775807ll; //const ll INF64 = 243'000'000'000'000'000'0; const ll INF64 = 430000000000000000; const ll MOD = 1000000007ll; //const ll MOD = 998244353ll; //const ll MOD = 1000003ll; const ll OD = 1000000000000007ll; const dou pi=3.141592653589793; //mod=MOD; long long modpow(long long a, long long n) { long long res = 1; while (n > 0) { if (n & 1) res = res * a % MOD; a = a * a % MOD; n >>= 1; } return res; } vector< ll > divisor(ll n) { //約数の列挙 vector< ll > ret; for(ll i = 1; i * i <= n; i++) { if(n % i == 0) { ret.push_back(i); if(i * i != n) ret.push_back(n / i); } } sort(begin(ret), end(ret)); return (ret); } map< ll, ll > prime_factor(ll n) {//素因数分解 map< ll, ll > ret; for(ll i = 2; i * i <= n; i++) { while(n % i == 0) { ret[i]++; n /= i; } } if(n != 1) ret[n] = 1; return ret; } //メモ //ゲーム(Grundy数とか)の復習をする //個数制限付きナップサックの復習 //戻すDP //全方位木DPとスライド最小値 //ゲーム→パリティに注目するといいことあるかも //理由がなければLLを使え! //理由がなければLLを使え! //理由がなければLLを使え! //拡張ユークリッド //木の直径のアルゴリズム //修論→章ごとに完成したら指導教員通して主査にいちど見てもらうこと //↑つまり,提出期限に余裕をもって完成する必要があるし(それはそう),二章,3章を他よりも先にさっさとまとめて結論を示すべし. //期待値DPの考え方→次の状態にするために一回の操作を行っている->今の期待値=次状態の期待値+1 //今週中に二章の目処をつける //EDPC Flowers復習する int main(){ set<ll>st; rep(i,31)st.insert((1ll<<i)); int n; std::cin >> n; if(aru(st,n)){ pppri(-1,-1,-1); exit(0); } else{ ll a,b,c; //std::cin >> a>>b>>c; rep(i,31){ if(n&(1<<i)){ a=(1<<i); break; } } pppri(a,n-a,n); } }