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POJ2773---Happy 2006(容斥+二分)
2015-11-21 01:00:50 来源: 作者: 【 】 浏览:1
Tags:POJ2773---Happy 2006 容斥 +二分

Description
Two positive integers are said to be relatively prime to each other if the Great Common Divisor (GCD) is 1. For instance, 1, 3, 5, 7, 9…are all relatively prime to 2006.

Now your job is easy: for the given integer m, find the K-th element which is relatively prime to m when these elements are sorted in ascending order.

Input
The input contains multiple test cases. For each test case, it contains two integers m (1 <= m <= 1000000), K (1 <= K <= 100000000).

Output
Output the K-th element in a single line.

Sample Input

2006 1
2006 2
2006 3

Sample Output

1
3
5

Source
POJ Monthly–2006.03.26,static

二分区间上限mid,计算[1, mid]里与n互质的数个数,多次二分以后,mid的值就是第k个和n互质的数

/*************************************************************************
    > File Name: POJ2773.cpp
    > Author: ALex
    > Mail: zchao1995@gmail.com 
    > Created Time: 2015年05月28日 星期四 19时36分15秒
 ************************************************************************/

#include 
   
     #include 
    
      #include 
     
       #include 
      
        #include 
       
         #include 
        
          #include 
         
           #include 
          
            #include 
           
             #include 
            
              #include
              #include 
              
                #include 
               
                 #include 
                
                  using namespace std; const double pi = acos(-1.0); const int inf = 0x3f3f3f3f; const double eps = 1e-15; typedef long long LL; typedef pair 
                 
                   PLL; vector 
                  
                    mst; LL calc(LL high) { int size = mst.size(); LL ans = 0; for (int i = 1; i < (1 << size); ++i) { int bits = 0; LL P = 1; for (int j = 0; j < size; ++j) { if (i & (1 << j)) { ++bits; P *= mst[j]; } } if (bits & 1) { ans += high / P; } else { ans -= high / P; } } return high - ans; } int main() { LL m, k; while (cin >> m >> k) { mst.clear(); LL tmp = m; for (int i = 2; i * i <= tmp; ++i) { if (tmp % i == 0) { mst.push_back(i); while (tmp % i == 0) { tmp /= i; } } } if (tmp > 1) { mst.push_back(tmp); } LL ans = -1, mid; LL l = 1, r = (1LL << 60); while (l <= r) { mid = (l + r) >> 1; LL tmp = calc(mid); if (tmp >= k) { r = mid - 1; ans = mid; } else { l = mid + 1; } } printf("%lld\n", ans); } }
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