1992. Find All Groups of Farmland
Description
You are given a 0-indexed m x n
binary matrix land
where a 0
represents a hectare of forested land and a 1
represents a hectare of farmland.
To keep the land organized, there are designated rectangular areas of hectares that consist entirely of farmland. These rectangular areas are called groups. No two groups are adjacent, meaning farmland in one group is not four-directionally adjacent to another farmland in a different group.
land
can be represented by a coordinate system where the top left corner of land
is (0, 0)
and the bottom right corner of land
is (m-1, n-1)
. Find the coordinates of the top left and bottom right corner of each group of farmland. A group of farmland with a top left corner at (r1, c1)
and a bottom right corner at (r2, c2)
is represented by the 4-length array [r1, c1, r2, c2].
Return a 2D array containing the 4-length arrays described above for each group of farmland in land
. If there are no groups of farmland, return an empty array. You may return the answer in any order.
Example 1:
Input: land = [[1,0,0],[0,1,1],[0,1,1]] Output: [[0,0,0,0],[1,1,2,2]] Explanation: The first group has a top left corner at land[0][0] and a bottom right corner at land[0][0]. The second group has a top left corner at land[1][1] and a bottom right corner at land[2][2].
Example 2:
Input: land = [[1,1],[1,1]] Output: [[0,0,1,1]] Explanation: The first group has a top left corner at land[0][0] and a bottom right corner at land[1][1].
Example 3:
Input: land = [[0]] Output: [] Explanation: There are no groups of farmland.
Constraints:
m == land.length
n == land[i].length
1 <= m, n <= 300
land
consists of only0
's and1
's.- Groups of farmland are rectangular in shape.
Solution
class Solution:
def findFarmland(self, land: List[List[int]]) -> List[List[int]]:
rows, cols = len(land), len(land[0])
res = []
for r1 in range(rows):
for c1 in range(cols):
if land[r1][c1] == 0: continue
r2, c2 = r1, c1
while c2 < cols and land[r2][c2] == 1:
c2 += 1
while r2 < rows and land[r2][c1] == 1:
r2 += 1
r2 = r2 if r2 == 0 else r2 - 1
c2 = c2 if c2 == 0 else c2 - 1
res.append([r1, c1, r2, c2])
for row in range(r1, r2 + 1):
for col in range(c1, c2 + 1):
land[row][col] = 0
return res