LeetCode 376. Wiggle Subsequence 摇摆序列
Question:
A sequence of numbers is called a wiggle sequence if the differences between successive numbers strictly alternate between positive and negative. The first difference (if one exists) may be either positive or negative. A sequence with fewer than two elements is trivially a wiggle sequence.
For example, [1,7,4,9,2,5] is a wiggle sequence because the differences (6,-3,5,-7,3) are alternately positive and negative. In contrast, [1,4,7,2,5] and [1,7,4,5,5] are not wiggle sequences, the first because its first two differences are positive and the second because its last difference is zero.
Given a sequence of integers, return the length of the longest subsequence that is a wiggle sequence. A subsequence is obtained by deleting some number of elements (eventually, also zero) from the original sequence, leaving the remaining elements in their original order.
Examples:
Input: [1,7,4,9,2,5] Output: 6 The entire sequence is a wiggle sequence. Input: [1,17,5,10,13,15,10,5,16,8] Output: 7 There are several subsequences that achieve this length. One is [1,17,10,13,10,16,8]. Input: [1,2,3,4,5,6,7,8,9] Output: 2
Follow up:
Can you do it in O(n) time?
原问题链接:https://leetcode.com/problems/wiggle-subsequence/description/
思路:
贪心算法,状态机。若为上升状态尽可能选择大的数,以保证下一次为下降状态的概率更大,反之亦然。这样就是选择最后一个上升状态或者最后一个下降状态的数。状态机解法,在每次状态改变时,length++; 参考小象学院LeetCode刷题班思路。
class Solution {
public int wiggleMaxLength(int[] nums) {
if(nums.length < 2 )
return nums.length;
final int begin = 0;
final int up = 1;
final int down = 2;
int state = begin;
int wigmaxlen = 1;
for (int i = 1; i <nums.length; i++ )
{
switch(state)
{
case begin:
if(nums[i]<nums[i-1])
{
state = down;
wigmaxlen++;
}
else if(nums[i]>nums[i-1])
{
state = up;
wigmaxlen++;
}
break;
case down:
if(nums[i]>nums[i-1])
{ //判断后的大括号要记得,不然每次进入一个数wigmaxlen都+1。
state = up;
wigmaxlen++;
}
break;
case up:
if(nums[i]<nums[i-1])
{
state = down;
wigmaxlen++;
}
break;
}
}
return wigmaxlen;
}
}博主学习笔记,转载请注明出处,谢谢~
上一篇: 网络爬虫脚本