POJ 2369 Permutations 【置换群】
2017-08-01 10:52
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Permutations
Description
We remind that the permutation of some final set is a one-to-one mapping of the set onto itself. Less formally, that is a way to reorder elements of the set. For example, one can define a permutation of the set {1,2,3,4,5} as follows:
This record defines a permutation P as follows: P(1) = 4, P(2) = 1, P(3) = 5, etc.
What is the value of the expression P(P(1))? It’s clear, that P(P(1)) = P(4) = 2. And P(P(3)) = P(5) = 3. One can easily see that if P(n) is a permutation then P(P(n)) is a permutation as well. In our example (believe us)
It is natural to denote this permutation by P2(n) = P(P(n)). In a general form the defenition is as follows: P(n) = P1(n), Pk(n) = P(Pk-1(n)). Among the permutations there is a very important one — that moves nothing:
It is clear that for every k the following relation is satisfied: (EN)k = EN. The following less trivial statement is correct (we won't prove it here, you may prove it yourself incidentally): Let P(n) be some permutation of an N elements set. Then there exists
a natural number k, that Pk = EN. The least natural k such that Pk = EN is called an order of the permutation P.
The problem that your program should solve is formulated now in a very simple manner: "Given a permutation find its order."
Input
In the first line of the standard input an only natural number N (1 <= N <= 1000) is contained, that is a number of elements in the set that is rearranged by this permutation. In the second line there are N natural numbers of the range from 1 up to N, separated
by a space, that define a permutation — the numbers P(1), P(2),…, P(N).
Output
You should write an only natural number to the standard output, that is an order of the permutation. You may consider that an answer shouldn't exceed 109.
Sample Input
Sample Output
思路:计算置换中每个循环节内元素的个数,答案就是这个数的最小公倍数。
Time Limit: 1000MS | Memory Limit: 65536K | |
Total Submissions: 3211 | Accepted: 1747 |
We remind that the permutation of some final set is a one-to-one mapping of the set onto itself. Less formally, that is a way to reorder elements of the set. For example, one can define a permutation of the set {1,2,3,4,5} as follows:
This record defines a permutation P as follows: P(1) = 4, P(2) = 1, P(3) = 5, etc.
What is the value of the expression P(P(1))? It’s clear, that P(P(1)) = P(4) = 2. And P(P(3)) = P(5) = 3. One can easily see that if P(n) is a permutation then P(P(n)) is a permutation as well. In our example (believe us)
It is natural to denote this permutation by P2(n) = P(P(n)). In a general form the defenition is as follows: P(n) = P1(n), Pk(n) = P(Pk-1(n)). Among the permutations there is a very important one — that moves nothing:
It is clear that for every k the following relation is satisfied: (EN)k = EN. The following less trivial statement is correct (we won't prove it here, you may prove it yourself incidentally): Let P(n) be some permutation of an N elements set. Then there exists
a natural number k, that Pk = EN. The least natural k such that Pk = EN is called an order of the permutation P.
The problem that your program should solve is formulated now in a very simple manner: "Given a permutation find its order."
Input
In the first line of the standard input an only natural number N (1 <= N <= 1000) is contained, that is a number of elements in the set that is rearranged by this permutation. In the second line there are N natural numbers of the range from 1 up to N, separated
by a space, that define a permutation — the numbers P(1), P(2),…, P(N).
Output
You should write an only natural number to the standard output, that is an order of the permutation. You may consider that an answer shouldn't exceed 109.
Sample Input
5 4 1 5 2 3
Sample Output
6
思路:计算置换中每个循环节内元素的个数,答案就是这个数的最小公倍数。
#include<iostream> #include<cstdio> #include<cstring> #include<string> #include<cmath> #include<queue> #include<stack> #include<vector> #include<map> #include<set> #include<algorithm> using namespace std; #define ll long long #define ms(a,b) memset(a,b,sizeof(a)) #define maxn 510 const int M=1e5+10; const int inf=0x3f3f3f3f; const int mod=1e9+7; const double eps=1e-10; ll n,m; ll a[M]; ll sum[M]; ll gcd(ll a,ll b) { return b==0?a:gcd(b,a%b); } int main() { while(~scanf("%lld",&n)) { for(int i=1;i<=n;i++)scanf("%lld",&a[i]); ms(sum,0); ll ans=0; for(int i=0;i<n;i++){ ll cot=0; int k=i; while(a[k]!=-1){ ll t=a[k]; a[k]=-1; k=t; cot++; } if(cot)sum[ans++]=cot; } ll kk; for(int i=1;i<ans;i++){ kk=gcd(sum[i-1],sum[i]); sum[i]=(sum[i-1]*sum[i])/kk; } printf("%lld\n",sum[ans-1]); } return 0; }
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