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Question
- leetcode: Next Permutation | LeetCode OJ
- lintcode: (52) Next Permutation
Problem Statement
Given a list of integers, which denote a permutation.
Find the next permutation in ascending order.
Example
For [1,3,2,3], the next permutation is [1,3,3,2]
For [4,3,2,1], the next permutation is [1,2,3,4]
Note
The list may contains duplicate integers.
题解
找下一个升序排列,C++ STL 源码剖析一书中有提及,Permutations 一小节中也有详细介绍,下面简要介绍一下字典序算法:
- 从后往前寻找索引满足
a[k] < a[k + 1], 如果此条件不满足,则说明已遍历到最后一个。 - 从后往前遍历,找到第一个比
a[k]大的数a[l], 即a[k] < a[l]. - 交换
a[k]与a[l]. - 反转
k + 1 ~ n之间的元素。
由于这道题中规定对于[4,3,2,1], 输出为[1,2,3,4], 故在第一步稍加处理即可。
Python
class Solution(object):def nextPermutation(self, nums):""":type nums: List[int]:rtype: void Do not return anything, modify nums in-place instead."""if nums is None or len(nums) <= 1:return# step1: find nums[i] < nums[i + 1], Loop backwardsi = 0for i in xrange(len(nums) - 2, -1, -1):if nums[i] < nums[i + 1]:breakelif i == 0:# reverse nums if reach maximumnums = nums.reverse()return# step2: find nums[i] < nums[j], Loop backwardsj = 0for j in xrange(len(nums) - 1, i, -1):if nums[i] < nums[j]:break# step3: swap betwenn nums[i] and nums[j]nums[i], nums[j] = nums[j], nums[i]# step4: reverse between [i + 1, n - 1]nums[i + 1:len(nums)] = nums[len(nums) - 1:i:-1]
C++
class Solution {public:/*** @param nums: An array of integers* @return: An array of integers that's next permuation*/vector<int> nextPermutation(vector<int> &nums) {if (nums.empty() || nums.size() <= 1) {return nums;}// step1: find nums[i] < nums[i + 1]int i = 0;for (i = nums.size() - 2; i >= 0; --i) {if (nums[i] < nums[i + 1]) {break;} else if (0 == i) {// reverse nums if reach maximumreverse(nums, 0, nums.size() - 1);return nums;}}// step2: find nums[i] < nums[j]int j = 0;for (j = nums.size() - 1; j > i; --j) {if (nums[i] < nums[j]) break;}// step3: swap betwenn nums[i] and nums[j]int temp = nums[i];nums[i] = nums[j];nums[j] = temp;// step4: reverse between [i + 1, n - 1]reverse(nums, i + 1, nums.size() - 1);return nums;}private:void reverse(vector<int>& nums, int start, int end) {for (int i = start, j = end; i < j; ++i, --j) {int temp = nums[i];nums[i] = nums[j];nums[j] = temp;}}};
Java
public class Solution {/*** @param nums: an array of integers* @return: return nothing (void), do not return anything, modify nums in-place instead*/public void nextPermutation(int[] nums) {if (nums == null || nums.length == 0) return;// step1: search the first nums[k] < nums[k+1] backwardint k = -1;for (int i = nums.length - 2; i >= 0; i--) {if (nums[i] < nums[i + 1]) {k = i;break;}}// if current rank is the largest, reverse it to smallest, returnif (k == -1) {reverse(nums, 0, nums.length - 1);return;}// step2: search the first nums[k] < nums[l] backwardint l = nums.length - 1;while (l > k && nums[l] <= nums[k]) l--;// step3: swap nums[k] with nums[l]int temp = nums[k];nums[k] = nums[l];nums[l] = temp;// step4: reverse between k+1 and nums.length-1;reverse(nums, k + 1, nums.length - 1);}private void reverse(int[] nums, int lb, int ub) {for (int i = lb, j = ub; i < j; i++, j--) {int temp = nums[i];nums[i] = nums[j];nums[j] = temp;}}}
源码分析
和 Permutation 一小节类似,这里只需要注意在step 1中i == -1时需要反转之以获得最小的序列。对于有重复元素,只要在 step1和 step2中判断元素大小时不取等号即可。Lintcode 上给的注释要求(其实是 Leetcode 上的要求)和实际给出的输出不一样。
复杂度分析
最坏情况下,遍历两次原数组,反转一次数组,时间复杂度为 O(n), 使用了 temp 临时变量,空间复杂度可认为是 O(1).
