1 public class Solution {
 2     public int kthSmallest(int[][] matrix, int k) {
 3         int n = matrix.length;
 4         PriorityQueue<Wrapper> pq = new PriorityQueue<Wrapper>();
 5         for(int i=0;i<n;i++) pq.offer(new Wrapper(0,i,matrix[0][i]));
 6         for(int i=0;i<k-1;i++){
 7             Wrapper w = pq.poll();
 8             int x = w.x;
 9             if(x==n-1) continue;
10             pq.offer(new Wrapper(x+1,w.y,matrix[x+1][w.y]));
11         }
12         return pq.poll().val;
13     }
14     class Wrapper implements Comparable<Wrapper>{
15         int x;
16         int y;
17         int val;
18         public Wrapper(int x,int y,int val){
19             this.x = x;
20             this.y = y;
21             this.val = val;
22         }
23         public int compareTo(Wrapper that){
24             return this.val-that.val;
25         }
26     }
27 }
28 //the run time complexity could be O(klongn), the space complexity could be O(k);

 1 public class Solution {
 2     public int kthSmallest(int[][] matrix, int k) {
 3         int left = matrix[0][0];
 4         int right = matrix[matrix.length-1][matrix.length-1]+1;
 5         while(left<right){
 6             int mid = left +(right-left)/2;
 7             int count = 0;
 8             int j = matrix.length-1;
 9             for(int i=0;i<matrix.length;i++){
10                 while(j>=0&&matrix[i][j]>mid){
11                     j--;
12                 }
13                 count+=j+1;
14             }
15             if(count<k) left = mid+1;
16             else right = mid;
17         }
18         return left;
19     }
20 }
21 //the run time complexity could be O()???