[LeetCode]Longest Increasing Path in a Matrix
Given an integer matrix, find the length of the longest increasing path.
From each cell, you can either move to four directions: left, right, up or down. You may NOT move diagonally or move outside of the boundary (i.e. wrap-around is not allowed).
Example 1:
nums = [ [9,9,4], [6,6,8], [2,1,1] ]
Return 4
The longest increasing path is [1, 2, 6, 9].
Example 2:
nums = [ [3,4,5], [3,2,6], [2,2,1] ]
Return 4
The longest increasing path is [3, 4, 5, 6]. Moving diagonally is not allowed.
DFS搜寻,修改下向大值移动的规则。
为了避免点重复搜寻,用了一个visited数组记录已经搜寻到的点。否则通不过时间测试。
class Solution {
public:
int longestIncreasingPath(vector<vector<int>>& matrix) {
int depth = 0;
int m = matrix.size();
if(m==0) return 0;
int n = matrix[0].size();
vector<vector<int>> visited(m,vector<int>(n,1));
for(int i=0; i<m; ++i)
for(int j=0; j<n; ++j){
depth = max(depth,Dfs(matrix,visited,i,j));
}
return depth;
}
int Dfs(vector<vector<int>>& matrix,vector<vector<int>>& visited,int x,int y){
int height = matrix.size();
int width = matrix[0].size();
if(visited[x][y]>1)
return visited[x][y];
int result = 1;
int Cur = matrix[x][y];
int nx,ny = 0;
for(int i=0; i<4; ++i){
if(i==0) { nx = x-1; ny = y;}
if(i==1) { nx = x+1; ny = y;}
if(i==2) { nx = x; ny = y-1;}
if(i==3) { nx = x; ny = y+1;}
if(nx<0||nx>=height||ny<0||ny>=width||matrix[nx][ny]<=matrix[x][y]) continue;//非搜寻的解
result = max(result, Dfs(matrix,visited,nx,ny)+1); //不记录就会重复DFS超时
visited[x][y] = result; //记录已经访问过的点
}
return result;
}
};