• Codeforces 1058 D. Vasya and Triangle 分解因子


    传送门:http://codeforces.com/contest/1058/problem/D

    题意:

      在一个n*m的格点中,问能否找到三个点,使得这三个点围成的三角形面积是矩形的1/k。

    思路:

      这个题就是找(0,0)(a,0)(0,b)中的a和b,可以得到2*n*m/k = a*b。所以2*n*m%k != 0答案就不存在。接下来就是把等式左边的分母消去,得到a,b的分配值。

    如果k是偶数,那个k肯定可以和2约分,所以把k除2. 再得到g = gcd(n,k),a = n/g,就是说能用n约掉一部分k就约掉,再用k = k/g,b = m/k。

    如果k是奇数,等式左边的2不能约掉,就要在经过和上面相同的操作后,把a * 2或者把b*2,肯定是有一个满足不超过限制的,因为之前a或b一定除了一个大于2的数。

    #include <algorithm>
    #include  <iterator>
    #include  <iostream>
    #include   <cstring>
    #include   <cstdlib>
    #include   <iomanip>
    #include    <bitset>
    #include    <cctype>
    #include    <cstdio>
    #include    <string>
    #include    <vector>
    #include     <stack>
    #include     <cmath>
    #include     <queue>
    #include      <list>
    #include       <map>
    #include       <set>
    #include   <cassert>
    
    using namespace std;
    //#pragma GCC optimize(3)
    //#pragma comment(linker, "/STACK:102400000,102400000")  //c++
    // #pragma GCC diagnostic error "-std=c++11"
    // #pragma comment(linker, "/stack:200000000")
    // #pragma GCC target("sse,sse2,sse3,ssse3,sse4,popcnt,abm,mmx,avx,tune=native")
    // #pragma GCC optimize("-fdelete-null-pointer-checks,inline-functions-called-once,-funsafe-loop-optimizations,-fexpensive-optimizations,-foptimize-sibling-calls,-ftree-switch-conversion,-finline-small-functions,inline-small-functions,-frerun-cse-after-loop,-fhoist-adjacent-loads,-findirect-inlining,-freorder-functions,no-stack-protector,-fpartial-inlining,-fsched-interblock,-fcse-follow-jumps,-fcse-skip-blocks,-falign-functions,-fstrict-overflow,-fstrict-aliasing,-fschedule-insns2,-ftree-tail-merge,inline-functions,-fschedule-insns,-freorder-blocks,-fwhole-program,-funroll-loops,-fthread-jumps,-fcrossjumping,-fcaller-saves,-fdevirtualize,-falign-labels,-falign-loops,-falign-jumps,unroll-loops,-fsched-spec,-ffast-math,Ofast,inline,-fgcse,-fgcse-lm,-fipa-sra,-ftree-pre,-ftree-vrp,-fpeephole2",3)
    
    #define lson (l , mid , rt << 1)
    #define rson (mid + 1 , r , rt << 1 | 1)
    #define debug(x) cerr << #x << " = " << x << "
    ";
    #define pb push_back
    #define pq priority_queue
    
    
    
    typedef long long ll;
    typedef unsigned long long ull;
    
    typedef pair<ll ,ll > pll;
    typedef pair<int ,int > pii;
    typedef pair<int,pii> p3;
    
    //priority_queue<int> q;//这是一个大根堆q
    //priority_queue<int,vector<int>,greater<int> >q;//这是一个小根堆q
    #define fi first
    #define se second
    //#define endl '
    '
    
    #define OKC ios::sync_with_stdio(false);cin.tie(0)
    #define FT(A,B,C) for(int A=B;A <= C;++A)  //用来压行
    #define REP(i , j , k)  for(int i = j ; i <  k ; ++i)
    #define max3(a,b,c) max(max(a,b), c); 
    //priority_queue<int ,vector<int>, greater<int> >que;
    
    const ll mos = 0x7FFFFFFF;  //2147483647
    const ll nmos = 0x80000000;  //-2147483648
    const int inf = 0x3f3f3f3f;       
    const ll inff = 0x3f3f3f3f3f3f3f3f; //18
    // const int mod = 998244353;
    const double esp = 1e-8;
    const double PI=acos(-1.0);
    const double PHI=0.61803399;    //黄金分割点
    const double tPHI=0.38196601;
    
    
    template<typename T>
    inline T read(T&x){
        x=0;int f=0;char ch=getchar();
        while (ch<'0'||ch>'9') f|=(ch=='-'),ch=getchar();
        while (ch>='0'&&ch<='9') x=x*10+ch-'0',ch=getchar();
        return x=f?-x:x;
    }
    
    
    /*-----------------------showtime----------------------*/
            ll gcd(ll a,ll b){
                if(b == 0)return a;
                return gcd(b,a%b);
            }  
    int main(){
                ll n,m,k;
                cin>>n>>m>>k;
                if(2*n*m%k!=0){
                    puts("NO");
                    return 0;
                }
                ll a,b;
                if(k % 2 == 0){
                        k/=2;
                        ll g = gcd(n,k);
                        a = n/g;
                        k = k / g;
                        b = m / k;
                }
                else {
                        ll g = gcd(n,k);
                        a = n / g;
                        k = k / g;
                        b = m / k;
                        if(2ll*a < n)a *=2ll;
                        else b *= 2ll;
                }
                puts("YES");
                cout<<"0 0"<<endl;
                cout<<a<<" 0"<<endl;
                cout<<"0 "<<b<<endl;
                return 0;
    }
    CF 1058D
  • 相关阅读:
    RAC SCAN漂移
    clickhouse通过uuid创建表
    oracle rac新增监听器
    oracle 19c ocr备份更改路径
    Svn与Git的区别,为什么使用git?
    SQL Server事务的回滚
    存储过程详解
    SQL Server 触发器
    Sql Prompt 10下载安装破解图文教程
    TFS对软件项目的简单管理
  • 原文地址:https://www.cnblogs.com/ckxkexing/p/9695692.html
Copyright © 2020-2023  润新知