You are given two integer arrays nums1 and nums2 sorted in ascending order and an integer k.
Define a pair (u,v) which consists of one element from the first array and one element from the second array.
Find the k pairs (u1,v1),(u2,v2) ...(uk,vk) with the smallest sums.
Example 1:
Input: nums1 = [1,7,11], nums2 = [2,4,6], k = 3 Output: [[1,2],[1,4],[1,6]] Explanation: The first 3 pairs are returned from the sequence: [1,2],[1,4],[1,6],[7,2],[7,4],[11,2],[7,6],[11,4],[11,6]
Example 2:
Input: nums1 = [1,1,2], nums2 = [1,2,3], k = 2 Output: [1,1],[1,1] Explanation: The first 2 pairs are returned from the sequence: [1,1],[1,1],[1,2],[2,1],[1,2],[2,2],[1,3],[1,3],[2,3]
Example 3:
Input: nums1 = [1,2], nums2 = [3], k = 3 Output: [1,3],[2,3] Explanation: All possible pairs are returned from the sequence: [1,3],[2,3]
题意:
给定两个有序数组,允许从俩数组各选一个数组成数对。求和最小的前K对。
Solution: PriorityQueue
code
1 class Solution { 2 public List<int[]> kSmallestPairs(int[] nums1, int[] nums2, int k) { 3 PriorityQueue<int[]> que = new PriorityQueue<>((a,b)->a[0]+a[1]-b[0]-b[1]); 4 List<int[]> res = new ArrayList<>(); 5 if(nums1.length==0 || nums2.length==0 || k==0) return res; 6 for(int i=0; i<nums1.length && i<k; i++) que.offer(new int[]{nums1[i], nums2[0], 0}); 7 while(k-- > 0 && !que.isEmpty()){ 8 int[] cur = que.poll(); 9 res.add(new int[]{cur[0], cur[1]}); 10 if(cur[2] == nums2.length-1) continue; 11 que.offer(new int[]{cur[0],nums2[cur[2]+1], cur[2]+1}); 12 } 13 return res; 14 } 15 }