Write an efficient algorithm that searches for a value in an m x n matrix. This matrix has the following properties:
- Integers in each row are sorted from left to right.
- The first integer of each row is greater than the last integer of the previous row.
For example,
Consider the following matrix:
[ [1, 3, 5, 7], [10, 11, 16, 20], [23, 30, 34, 50] ]
Given target = 3, return true. (Medium)
分析:
考察题目给的二维数组的特点发现,其本质跟一个排好序的一维数组没有区别,所以就是一个二分查找问题。
对于mid,其对应的点是matrix[mid / n][mid % n]
代码:
1 class Solution { 2 public: 3 bool searchMatrix(vector<vector<int>>& matrix, int target) { 4 int m = matrix.size(), n = matrix[0].size(); 5 int start = 0, end = m * n - 1; 6 while (start + 1 < end) { 7 int mid = start + (end - start) / 2; 8 if (matrix[mid / n][mid % n] == target) { 9 return true; 10 } 11 else if (matrix[mid / n][mid % n] < target) { 12 start = mid; 13 } 14 else { 15 end = mid; 16 } 17 } 18 if (matrix[start / n][start % n] == target) { 19 return true; 20 } 21 if (matrix[end / n][end % n] == target) { 22 return true; 23 } 24 return false; 25 } 26 };