Easy
Given two arrays arr1 and arr2, the elements of arr2 are distinct, and all elements in arr2 are also in arr1.
Sort the elements of arr1 such that the relative ordering of items in arr1 are the same as in arr2. Elements that don't appear in arr2 should be placed at the end of arr1 in ascending order.
Example 1:
Input: arr1 = [2,3,1,3,2,4,6,7,9,2,19], arr2 = [2,1,4,3,9,6] Output: [2,2,2,1,4,3,3,9,6,7,19]
Constraints:
arr1.length, arr2.length <= 10000 <= arr1[i], arr2[i] <= 1000- Each
arr2[i]is distinct. - Each
arr2[i]is inarr1.
题目大意:给出两个数组arr1和arr2,arr2中存在的元素必存在于arr1中,将arr1中的元素按照其在arr2的顺序进行排列,不在arr2中的元素按升序排列在数组末尾。
方法:
由于arr1中的元素可能存在重复,那么排列的时候就要将他们聚在一起。因此可选用一个容器收纳arr1中的元素并记录他们的个数,然后再按照arr2中元素的出现顺序得到结果。
因为不在arr2中的元素要按升序排列,所以使用排序的map容器收纳arr1中元素。
代码如下:
class Solution { public: vector<int> relativeSortArray(vector<int>& arr1, vector<int>& arr2) { vector<int> res; map<int,int> nums; for(int n:arr1){ nums[n]+=1; } for(int m:arr2){ for(int i=0;i<nums[m];++i){ res.push_back(m); } nums.erase(m); } for(auto k:nums){ for(int i=0;i<k.second;++i){ res.push_back(k.first); } } return res; } };