Permutation Sequence
Permutation Sequence
Total Accepted: 44618 Total Submissions: 187104 Difficulty: Medium
The set [1,2,3,…,n]
contains a total of n! unique permutations.
By listing and labeling all of the permutations in order,
We get the following sequence (ie, for n = 3):
"123"
"132"
"213"
"231"
"312"
"321"
Given n and k, return the kth permutation sequence.
Note: Given n will be between 1 and 9 inclusive.
先看个例子:假设n=4,k=8
1.固定第0个位置后面有3!=6中排列,
2.固定第0,1个位置后面有2!=2中排列
pos: 0 1 2 3
3! 2! 1! 0
第0个位置每固定一个字符,后面就有6种排列,所以第0个位置分别为'1','2','3','4'时分别对应的排列的范围是:
序号 字符 范围
0 '1' 第1-6个排序
1 '2' 第7-12个排列
2 '3' 第13-18个排列
3 '4' 第19-24个排列
k=8 属于第7-12个排列,其实就是(k-1)/6个序号的排列
排好第0个位置的字符后,按同样的方法排第1个位置就可以了,此时,k=k%6=8%6=2;
class Solution { public: string getPermutation(int n, int k) { string s; int fact = 1; for(int i=1;i<=n;i++){ s.push_back(i+'0'); fact *= i; } k--; string res while(n){ fact /= n; int pos = k/fact; res.push_back(s[pos]); s.erase(s.begin()+pos); k = k%fact; --n; } return res; } };
写者:zengzy
出处: http://www.cnblogs.com/zengzy
标题有【转】字样的文章从别的地方转过来的,否则为个人学习笔记