leetcode——169 Majority Element(数组中出现次数过半的元素)
Given an array of size n, find the majority element. The majority element is the element that appears more than n/2 times.
You may assume that the array is non-empty and the majority element always exist in the array.
You may assume that the array is non-empty and the majority element always exist in the array.
Hide Tags: Divide and Conquer Array Bit Manipulation
解题思路:
(1)使用HashMap。Map的特点:不同意反复元素,因此在存储前须要推断是否存在
(2)推断HashMap中存在nums[i],假设存在。使用hm.get(nums[i])获取value,即通过key来获得value值,即count(出现的次数)
(3)假设count大于数组长度的一般。即返回该元素
(4)假设count不满足条件,向HashMap存储元素以及出现的次数。
代码例如以下:
public static int majorityElement(int[] nums) { /* * Map的特点:不同意反复元素。因此在存储前须要推断是否存在 */ Map<Integer, Integer> hm=new HashMap<Integer, Integer>(); for (int i = 0; i < nums.length; i++) { int count=0; //推断HashMap中存在nums[i],假设存在,使用hm.get(nums[i])获取value //即通过key来获得value值,即count(出现的次数) if (hm.containsKey(nums[i])) { count=hm.get(nums[i])+1; } else { count=1; } //假设count大于数组长度的一般,即返回该元素 if (count>nums.length/2) { return nums[i]; } //向HashMap存储元素以及出现的次数 hm.put(nums[i], count); } return 0; }