题目:
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 in ascending from left to right.
- Integers in each column are sorted in ascending from top to bottom.
For example,
Consider the following matrix:
[ [1, 4, 7, 11, 15], [2, 5, 8, 12, 19], [3, 6, 9, 16, 22], [10, 13, 14, 17, 24], [18, 21, 23, 26, 30] ]
Given target = 5, return true.
Given target = 20, return false.
题解:
Solution 1 ()
class Solution { public: bool searchMatrix(vector<vector<int>>& matrix, int target) { int m = matrix.size(); if(m == 0) return false; int n = matrix[0].size(); for(int c=0; c<n; ++c) { if(matrix[m-1][c] < target) continue; if(matrix[m-1][c] == target || matrix[0][c] == target) return true; for(int r=m-2; r>=0; --r) { if(matrix[r][c] == target) return true; if(matrix[r][c] > target) continue; if(matrix[r][n-1] < target) return false; for(int k=c; k<n; ++k) { if(matrix[r][k] == target) return true; if(matrix[r][k] < target) continue; break; } } } return false; } };
从右上角开始,如果数字小于target,所在行不可能有target这个数,如果数字大于target,所在列不可能有target这个数(也可以从左下角开始)
Solution 2 ()
class Solution { public: bool searchMatrix(vector<vector<int>> &matrix, int target) { if (matrix.empty() || matrix[0].empty()) return false; int m = matrix.size(); int n = matrix[0].size(); for (int i = 0, j = n - 1; i < m && j >= 0;) { if (matrix[i][j] == target) return true; if (matrix[i][j] > target) j--; else i++; } return false; } };