Description#
You are given an m x n
integer matrix grid
where each cell is either 0
(empty) or 1
(obstacle). You can move up, down, left, or right from and to an empty cell in one step.
Return the minimum number of steps to walk from the upper left corner (0, 0)
to the lower right corner (m - 1, n - 1)
given that you can eliminate at most k
obstacles. If it is not possible to find such walk return -1
.
Example 1:
Input: grid = [[0,0,0],[1,1,0],[0,0,0],[0,1,1],[0,0,0]], k = 1
Output: 6
Explanation:
The shortest path without eliminating any obstacle is 10.
The shortest path with one obstacle elimination at position (3,2) is 6. Such path is (0,0) -> (0,1) -> (0,2) -> (1,2) -> (2,2) -> (3,2) -> (4,2).
Example 2:
Input: grid = [[0,1,1],[1,1,1],[1,0,0]], k = 1
Output: -1
Explanation: We need to eliminate at least two obstacles to find such a walk.
Constraints:
m == grid.length
n == grid[i].length
1 <= m, n <= 40
1 <= k <= m * n
grid[i][j]
is either 0
or 1
.grid[0][0] == grid[m - 1][n - 1] == 0
Solutions#
Solution 1#
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| class Solution:
def shortestPath(self, grid: List[List[int]], k: int) -> int:
m, n = len(grid), len(grid[0])
if k >= m + n - 3:
return m + n - 2
q = deque([(0, 0, k)])
vis = {(0, 0, k)}
ans = 0
while q:
ans += 1
for _ in range(len(q)):
i, j, k = q.popleft()
for a, b in [[0, -1], [0, 1], [1, 0], [-1, 0]]:
x, y = i + a, j + b
if 0 <= x < m and 0 <= y < n:
if x == m - 1 and y == n - 1:
return ans
if grid[x][y] == 0 and (x, y, k) not in vis:
q.append((x, y, k))
vis.add((x, y, k))
if grid[x][y] == 1 and k > 0 and (x, y, k - 1) not in vis:
q.append((x, y, k - 1))
vis.add((x, y, k - 1))
return -1
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| class Solution {
public int shortestPath(int[][] grid, int k) {
int m = grid.length;
int n = grid[0].length;
if (k >= m + n - 3) {
return m + n - 2;
}
Deque<int[]> q = new ArrayDeque<>();
q.offer(new int[] {0, 0, k});
boolean[][][] vis = new boolean[m][n][k + 1];
vis[0][0][k] = true;
int ans = 0;
int[] dirs = {-1, 0, 1, 0, -1};
while (!q.isEmpty()) {
++ans;
for (int i = q.size(); i > 0; --i) {
int[] p = q.poll();
k = p[2];
for (int j = 0; j < 4; ++j) {
int x = p[0] + dirs[j];
int y = p[1] + dirs[j + 1];
if (x >= 0 && x < m && y >= 0 && y < n) {
if (x == m - 1 && y == n - 1) {
return ans;
}
if (grid[x][y] == 0 && !vis[x][y][k]) {
q.offer(new int[] {x, y, k});
vis[x][y][k] = true;
} else if (grid[x][y] == 1 && k > 0 && !vis[x][y][k - 1]) {
q.offer(new int[] {x, y, k - 1});
vis[x][y][k - 1] = true;
}
}
}
}
}
return -1;
}
}
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| class Solution {
public:
int shortestPath(vector<vector<int>>& grid, int k) {
int m = grid.size(), n = grid[0].size();
if (k >= m + n - 3) return m + n - 2;
queue<vector<int>> q;
q.push({0, 0, k});
vector<vector<vector<bool>>> vis(m, vector<vector<bool>>(n, vector<bool>(k + 1)));
vis[0][0][k] = true;
int ans = 0;
vector<int> dirs = {-1, 0, 1, 0, -1};
while (!q.empty()) {
++ans;
for (int i = q.size(); i > 0; --i) {
auto p = q.front();
k = p[2];
q.pop();
for (int j = 0; j < 4; ++j) {
int x = p[0] + dirs[j], y = p[1] + dirs[j + 1];
if (x >= 0 && x < m && y >= 0 && y < n) {
if (x == m - 1 && y == n - 1) return ans;
if (grid[x][y] == 0 && !vis[x][y][k]) {
q.push({x, y, k});
vis[x][y][k] = true;
} else if (grid[x][y] == 1 && k > 0 && !vis[x][y][k - 1]) {
q.push({x, y, k - 1});
vis[x][y][k - 1] = true;
}
}
}
}
}
return -1;
}
};
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| func shortestPath(grid [][]int, k int) int {
m, n := len(grid), len(grid[0])
if k >= m+n-3 {
return m + n - 2
}
q := [][]int{[]int{0, 0, k}}
vis := make([][][]bool, m)
for i := range vis {
vis[i] = make([][]bool, n)
for j := range vis[i] {
vis[i][j] = make([]bool, k+1)
}
}
vis[0][0][k] = true
dirs := []int{-1, 0, 1, 0, -1}
ans := 0
for len(q) > 0 {
ans++
for i := len(q); i > 0; i-- {
p := q[0]
q = q[1:]
k = p[2]
for j := 0; j < 4; j++ {
x, y := p[0]+dirs[j], p[1]+dirs[j+1]
if x >= 0 && x < m && y >= 0 && y < n {
if x == m-1 && y == n-1 {
return ans
}
if grid[x][y] == 0 && !vis[x][y][k] {
q = append(q, []int{x, y, k})
vis[x][y][k] = true
} else if grid[x][y] == 1 && k > 0 && !vis[x][y][k-1] {
q = append(q, []int{x, y, k - 1})
vis[x][y][k-1] = true
}
}
}
}
}
return -1
}
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