169. Majority Element My Submissions Question

Total Accepted: 95925 Total Submissions: 239241 Difficulty: Easy

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.

  1. O(n*n):判断每个元素是否是majority

  2. O(n): 利用HashTable存储每个元素的个数,空间复杂度高

  3. O(nlogn):对数组排序,majority肯定在n/2位置处。

  4. O(nlogn):分而治之,分成两分A和B,如果A和B的majority相等,则其为整个数组的majority;否则,分别扫描计算A,B的majority元素个数(O(2n)),所以时间复杂度T(n) = T(n/2) + 2n = O(nlogn)。

  5. O(n):两两删除数组中两个不同的元素,最后剩下的就是多的元素。代码如下:

    int majorityElement(vector& nums) {
    if (nums.empty())
    return -1;

    int candidate, count = 0;

    for (int i = 0; i < nums.size(); ++i) {
    if (count == 0) {
    candidate = nums[i];
    ++count;
    }
    else {
    if (candidate == nums[i])
    ++count;
    else
    --count;
    }
    }

    return candidate;
    }

posted @ 2016-02-27 10:49  bairuiworld  阅读(141)  评论(0)    收藏  举报