原题链接:[url]https://leetcode.com/problems/permutation-sequence/[/url]
[分析]
思路1:调用 k 次NextPermutation.
思路2:数学解法,在n!排列中,每个第一位元素带领 (n-1)! 个排列数,假设 p = k / (n-1)!,则num[p]就是第一位上的数字,注意 k 要从0开始计数,因此进主循环前k--。
类似的方法求出剩下位置的数字。参考:
[url]http://blog.youkuaiyun.com/doc_sgl/article/details/12840715[/url]
[url]http://m.blog.youkuaiyun.com/blog/linhuanmars/22028697[/url]
[分析]
思路1:调用 k 次NextPermutation.
思路2:数学解法,在n!排列中,每个第一位元素带领 (n-1)! 个排列数,假设 p = k / (n-1)!,则num[p]就是第一位上的数字,注意 k 要从0开始计数,因此进主循环前k--。
类似的方法求出剩下位置的数字。参考:
[url]http://blog.youkuaiyun.com/doc_sgl/article/details/12840715[/url]
[url]http://m.blog.youkuaiyun.com/blog/linhuanmars/22028697[/url]
public class Solution {
public String getPermutation(int n, int k) {
if (n <= 0 || n > 9)
return "";
int[] num = new int[n];
for (int i = 0; i < n; i++)
num[i] = i + 1;
int factorial = 1;
for (int i = 2; i <= n; i++)
factorial *= i;
StringBuilder result = new StringBuilder(n);
k--;
for (int i = 0; i < n; i++) {
factorial /= n - i;
int selectIdx = k / factorial;
result.append(num[selectIdx]);
k %= factorial;
for (int j = selectIdx; j < n - i - 1; j++)
num[j] = num[j + 1];
}
return result.toString();
}
public String getPermutation1(int n, int k) {
if (n <= 0 || n > 9)
return "";
int[] num = new int[n];
for (int i = 0; i < n; i++)
num[i] = i + 1;
for (int i = 1; i < k; i++)
nextPermutation(num);
StringBuilder result = new StringBuilder(n);
for (int i = 0; i < n; i++)
result.append(num[i]);
return result.toString();
}
public void nextPermutation(int[] num) {
int p = num.length - 2;
while (p >= 0 && num[p] >= num[p + 1])
p--;
if (p >= 0) {
int q = p + 1;
while (q < num.length && num[q] > num[p])
q++;
int tmp = num[--q];
num[q] = num[p];
num[p] = tmp;
}
int q = num.length - 1;
p = p + 1;
while (p < q) {
int tmp = num[p];
num[p] = num[q];
num[q] = tmp;
p++;
q--;
}
}
}
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