题目:
Given a binary array, find the maximum number of consecutive 1s in this array.
Example 1:
Input: [1,1,0,1,1,1] Output: 3 Explanation: The first two digits or the last three digits are consecutive 1s. The maximum number of consecutive 1s is 3.
Note:
- The input array will only contain
0and1. - The length of input array is a positive integer and will not exceed 10,000
分析
first try:
class Solution { public int findMaxConsecutiveOnes(int[] nums) { int startPntr =0, endPntr =0; int length = nums.length; int maxCount = 0; for(int i=0; i<length; i++) { if(nums[i] == 0) { if(maxCount < endPntr-startPntr){ maxCount = endPntr-startPntr; } startPntr = i+1; endPntr = i+1; } else { endPntr++; } } return maxCount; } }
结果:
Submission Result: Wrong Answer Input: [1] Output: 0 Expected: 1
二次:
class Solution { public int findMaxConsecutiveOnes(int[] nums) { int startPntr =0, endPntr =0; int length = nums.length; int maxCount = 0; for(int i=0; i<length; i++) { if(nums[i] == 0) { if(maxCount < endPntr-startPntr){ maxCount = endPntr-startPntr; } startPntr = i+1; endPntr = i+1; } else { endPntr++; if(i==length-1){ if(maxCount < endPntr-startPntr){ maxCount = endPntr-startPntr; } } } } return maxCount; } }
result:
分析:
需要考虑1作为结尾的情况。