https://leetcode.com/problems/rotting-oranges/description/
Rotting Oranges - LeetCode
Can you solve this real interview question? Rotting Oranges - You are given an m x n grid where each cell can have one of three values: * 0 representing an empty cell, * 1 representing a fresh orange, or * 2 representing a rotten orange. Every minute, any
leetcode.com
간단한 bfs 시뮬레이션 문제
class Solution:
def orangesRotting(self, grid: List[List[int]]) -> int:
q = deque()
s = set()
for i in range(len(grid)):
for j in range(len(grid[0])):
if grid[i][j] == 2:
q.append((i, j))
s.add((i, j))
DX = [0, 0, 1, -1]
DY = [-1, 1, 0, 0]
minutes = -1
while q:
length = len(q)
for _ in range(length):
i, j = q.popleft()
grid[i][j] = 2
for dx, dy in zip(DX, DY):
nx = i + dx
ny = j + dy
if nx >= 0 and ny >= 0 and nx < len(grid) and ny < len(grid[0]):
if grid[nx][ny] == 1 and (nx, ny) not in s:
q.append((nx, ny))
s.add((nx, ny))
minutes += 1
if 1 in (item for col in grid for item in col):
return -1
else:
return max(0, minutes)
코드는 좀 지저분하다.
숏코딩 챌린지를 볼까
class Solution:
def orangesRotting(self, grid: List[List[int]]) -> int:
row, col = len(grid), len(grid[0])
rotting = {(i, j) for i in range(row) for j in range(col) if grid[i][j] == 2}
fresh = {(i, j) for i in range(row) for j in range(col) if grid[i][j] == 1}
timer = 0
while fresh:
if not rotting: return -1
rotting = {(i+di, j+dj) for i, j in rotting for di, dj in [(0, 1), (1, 0), (0, -1), (-1, 0)] if (i+di, j+dj) in fresh}
fresh -= rotting
timer += 1
return timerㅋㅋ 굉장히 짧다
댓글에서 이런거 그만해야된다고 일침을 가하고있다.
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