输入一个矩阵(n*n),按照从外向里以顺时针的顺序依次打印出每一个数字。
示例 1:
输入:matrix = [[1,2,3],[4,5,6],[7,8,9]]
输出:[1,2,3,6,9,8,7,4,5]
限制:
0 <= matrix.length
0 <= matrix[i].length
import copy
class Solution(object):
def __init__(self):
self.lis = []
def spiralOrder(self, matrix):
"""
:type matrix: List[List[int]]
:rtype: List[int]
"""
rows = rols = len(matrix)
if rows < 1:
return []
if rows == 1:
self.lis.append(matrix[0][0])
return self.lis
if rows == 2:
self.lis.append(matrix[0][0])
self.lis.append(matrix[0][1])
self.lis.append(matrix[1][1])
self.lis.append(matrix[1][0])
return self.lis
if rows == 3:
for i in matrix[0]:
self.lis.append(i)
for i in range(1, rols-1):
self.lis.append(matrix[i][rols-1])
for i in range(rols-1, -1, -1):
self.lis.append(matrix[rols-1][i])
for i in range(rols-2, 0, -1):
self.lis.append(matrix[i][0])
self.lis.append(matrix[1][1])
return self.lis
if rows > 3:
for i in matrix[0]:
self.lis.append(i)
for i in range(1, rols-1):
self.lis.append(matrix[i][rols-1])
for i in range(rols-1, -1, -1):
self.lis.append(matrix[rols-1][i])
for i in range(rols-2, 0, -1):
self.lis.append(matrix[i][0])
lic = copy.copy(matrix)
lic.pop(0)
lic.pop()
for i in lic:
i.pop(0)
i.pop()
self.spiralOrder(lic)
return self.lis
s = Solution()
liy = []
lix = []
n = 3
for i in range(1, n*n+1):
liy.append(i)
for i in range(n):
lix.append(liy[i*n : i*n + n])
ret = s.spiralOrder(lix)
print(ret)
结束!
