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unique-paths-ii.py
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unique-paths-ii.py
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# Time: O(m * n)
# Space: O(m + n)
#
# Follow up for "Unique Paths":
#
# Now consider if some obstacles are added to the grids. How many unique paths would there be?
#
# An obstacle and empty space is marked as 1 and 0 respectively in the grid.
#
# For example,
# There is one obstacle in the middle of a 3x3 grid as illustrated below.
#
# [
# [0,0,0],
# [0,1,0],
# [0,0,0]
# ]
# The total number of unique paths is 2.
#
# Note: m and n will be at most 100.
#
class Solution:
# @param obstacleGrid, a list of lists of integers
# @return an integer
def uniquePathsWithObstacles(self, obstacleGrid):
m, n = len(obstacleGrid), len(obstacleGrid[0])
ways = [0] * n
if obstacleGrid[0][0] == 0:
ways[0] = 1
for j in xrange(1, n):
if obstacleGrid[0][j] == 1:
ways[j] = 0
else:
ways[j] = ways[j - 1]
for i in xrange(1, m):
if obstacleGrid[i][0] == 1:
ways[0] = 0
for j in xrange(1, n):
if obstacleGrid[i][j] == 1:
ways[j] = 0
else:
ways[j] += ways[j - 1]
return ways[n - 1]
if __name__ == "__main__":
obstacleGrid = [
[0,0,0],
[0,1,0],
[0,0,0]
]
print Solution().uniquePathsWithObstacles(obstacleGrid)