658. Find K Closest Elements
阿新 • • 發佈:2017-08-14
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Given a sorted array, two integers k and x, find the k closest elements to x in the array. The result should also be sorted in ascending order. If there is a tie, the smaller elements are always preferred.
Example 1:
Input: [1,2,3,4,5], k=4, x=3 Output: [1,2,3,4]
Example 2:
Input: [1,2,3,4,5], k=4, x=-1 Output: [1,2,3,4]
Note:
- The value k is positive and will always be smaller than the length of the sorted array.
- Length of the given array is positive and will not exceed 104
- Absolute value of elements in the array and x will not exceed 104
Solution 1: set a map, the key is |arr[i]-x|, the value is the index vector, eg, 1:[1,3] for example 1 input. O(klogk+n)
1 class Solution { 2 public: 3 vector<int> findClosestElements(vector<int>& arr, int k, int x) { 4 map<int,vector<int>> m; 5 vector<int> res; 6 for (int i=0;i<arr.size();i++){ 7 int distance=abs(arr[i]-x); 8 m[distance].push_back(i);9 } 10 int count=0; 11 for (auto it=m.begin();it!=m.end();it++){ 12 int size=it->second.size(); 13 for (int i=0;i<size;i++){ 14 if (count<k){ 15 int index=it->second[i]; 16 res.push_back(arr[index]); 17 count++; 18 } 19 } 20 21 } 22 sort(res.begin(),res.end()); 23 return res; 24 } 25 };
Solution 2: use the binary search to find the first number which is >=x, then, determine the indices of the start and the end of a subarray in arr, where the subarray is our result. The time complexity is O(logn + k).
1 class Solution { 2 public: 3 vector<int> findClosestElements(vector<int>& arr, int k, int x) { 4 int index=lower_bound(arr.begin(),arr.end(),x)-arr.begin(); //binary search:log(n) 5 int i=index-1,j=index; 6 while(k--){ 7 if (i<0||(j<arr.size()&&abs(arr[j]-x)<abs(arr[i]-x))) j++; 8 else i--; 9 } 10 vector<int> res(arr.begin()+i+1,arr.begin()+j); 11 return res; 12 } 13 };
658. Find K Closest Elements