标签:++ nat desc inpu 题意 NPU 没有 one and
nums
, there is always exactly one largest element.Find whether the largest element in the array is at least twice as much as every other number in the array.
If it is, return the index of the largest element, otherwise return -1.
Example 1:
Input: nums = [3, 6, 1, 0] Output: 1 Explanation: 6 is the largest integer, and for every other number in the array x, 6 is more than twice as big as x. The index of value 6 is 1, so we return 1.
Example 2:
Input: nums = [1, 2, 3, 4] Output: -1 Explanation: 4 isn‘t at least as big as twice the value of 3, so we return -1.
Note:
nums
will have a length in the range [1, 50]
.
Every nums[i]
will be an integer in the range [0, 99]
题意:找出数组中的最大元素,判断这个数是否至少是数组中其它元素的两倍,如果没有这样的元素,返回-1。
思路:找到最大元素,保存其下标,然后对数组排序,找到第二大的数,两个数作比较,如果最大的元素大于或者等于第二大元素的二倍,那么肯定也就大于其余元素的二倍,如果是小于的话,那就返回-1。
class Solution { public: //找到最大数的id,然后排序和第二大的数比较,如果比它还大,那就返回最大数的id int dominantIndex(vector<int>& nums) { int len=nums.size(); int max=0; int id=0; for(int i=0;i<len;i++){ if(nums[i]>max){ max=nums[i]; id=i; } } sort(nums.begin(),nums.end()); //对vector进行排序 if(max<nums[len-2]*2) id=-1; return id; } };
标签:++ nat desc inpu 题意 NPU 没有 one and
原文地址:https://www.cnblogs.com/Bipolard/p/9988042.html