约瑟夫环是一个数学的应用问题:已知n个人(以编号1。2,3...n分别表示)围坐在一张圆桌周围。
从编号为k的人開始报数。数到m的那个人出列;他的下一个人又从1開始报数。数到m的那个人又出列;依此规律反复下去。直到圆桌周围的人所有出列。求剩下最后的一个人的编号。
#include "stdafx.h"
#include<vector>
#include<iostream>
using namespace std;
template <class InputIterator, class Distance>
void advance(vector<int>& i, int n);
vector<int>::iterator do_once(vector<int> &cycle, vector<int>::iterator it, int m)
{
int k = cycle.end() - it-1;
if (k >= m)
{
it = cycle.erase(it + m);
if (it == cycle.end())
it = cycle.begin();
return it;
}
else
{
int h = m%cycle.size() - k;
if (h>0)
{
it = cycle.erase(cycle.begin() + m%cycle.size() - k - 1);
if (it == cycle.end())
it = cycle.begin();
return it;
}
else
{
it = cycle.erase(it + m%cycle.size());
if (it == cycle.end())
it = cycle.begin();
return it;
}
}
}
int Joseph_problem(int n, int k, int m)
{
_ASSERTE(k <= n);
vector<int>cycle;
vector<int>::iterator it;
for (int i = 0; i < n; i++)
{
cycle.push_back(i);
}
it = cycle.begin();
advance(it, k-1);
while (cycle.size() != 1)
{
it = do_once(cycle, it, m - 1);
}
return *it+1;
}
int _tmain(int argc, _TCHAR* argv[])
{
/*vector<int>cycle;
vector<int>::iterator it;
for (int i = 0; i < 4; i++)
{
cycle.push_back(i);
}
it = cycle.begin();
advance(it, 3);
cout << *(it) << endl;
cout << *(cycle.erase(it))<< endl;*/
cout << 4 % 4 << endl;
cout << Joseph_problem(4, 2, 5) << endl;
system("pause");
return 0;
}