Search a 2D Matrix
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.
解题思路:
题意为给定一个矩阵和一个目标值,推断目标值是否在矩阵中存在。矩阵满足:每一行从左往右递增,后一行的第一个元素大于前一行最后一个元素。
能够考虑二分查找法。将一维坐标转化成二维坐标就可以。
class Solution {
public:
bool searchMatrix(vector<vector<int>>& matrix, int target) {
//二分查找,将矩阵查找转化成线性查找
int m = matrix.size();
if(m==0){
return false;
}
int n = matrix[0].size();
if(n==0){
return false;
}
int start = 0, end = m*n-1;
while(start<=end){
int middle = (start + end)/2;
int x = middle / n;
int y = middle % n;
if(matrix[x][y]==target){
return true;
}else if(matrix[x][y]<target){
start = middle + 1;
}else{
end = middle - 1;
}
}
return false;
}
};