寻找第N小序列
Time Limit: 2000/1000ms (Java/Others)
Problem Description:
Now our hero finds the door to the BEelzebub feng5166. He opens the door and finds feng5166 is about to kill our pretty Princess. But now the BEelzebub has to beat our hero first. feng5166 says, "I have three question for you, if you can work them out, I will release the Princess, or you will be my dinner, too." Ignatius says confidently, "OK, at last, I will save the Princess.""Now I will show you the first problem." feng5166 says, "Given a sequence of number 1 to N, we define that 1,2,3...N-1,N is the smallest sequence among all the sequence which can be composed with number 1 to N(each number can be and should be use only once in this problem). So it's easy to see the second smallest sequence is 1,2,3...N,N-1. Now I will give you two numbers, N and M. You should tell me the Mth smallest sequence which is composed with number 1 to N. It's easy, isn't is? Hahahahaha......"Can you help Ignatius to solve this problem?
Output:
For each test case, you only have to output the sequence satisfied the BEelzebub's demand. When output a sequence, you should print a space between two numbers, but do not output any spaces after the last number.
Sample Output:
1 2 3 5 6 4
1 2 3 4 5 6 7 9 8 11 10
解题思路:万能STL中的next_permutation(a,a+n)可以找到第m-1个全排列。注:如果m>(n!-1),next_permutation(a,a+n)就会继续从有序序列开始再进行全排列。
AC代码:
1 #include<bits/stdc++.h>
2 using namespace std;
3 int n,m,a[1005];
4 int main(){
5 while(cin>>n>>m){
6 for(int i=0;i<n;++i)a[i]=i+1;
7 for(int i=1;i<m;++i)next_permutation(a,a+n);//第m-1次的全排列
8 for(int i=0;i<n;++i)cout<<a[i]<<(i==n-1?'
':' ');
9 }
10 return 0;
11 }