Description
You are given an m x n binary matrix matrix.
You can choose any number of columns in the matrix and flip every cell in that column (i.e., Change the value of the cell from 0 to 1 or vice versa).
Return the maximum number of rows that have all values equal after some number of flips.
Example 1:
Input: matrix = [[0,1],[1,1]]
Output: 1
Explanation: After flipping no values, 1 row has all values equal.
Example 2:
Input: matrix = [[0,1],[1,0]]
Output: 2
Explanation: After flipping values in the first column, both rows have equal values.
Example 3:
Input: matrix = [[0,0,0],[0,0,1],[1,1,0]]
Output: 2
Explanation: After flipping values in the first two columns, the last two rows have equal values.
Constraints:
- m == matrix.length
- n == matrix[i].length
- 1 <= m, n <= 300
- matrix[i][j] is either 0 or 1.
分析
题目的意思是:给定一个mxn的二进制矩阵,思路是把每一行变成全0和全1,并记录改变的位置,放在字典里面进行统计。
代码
class Solution:
def maxEqualRowsAfterFlips(self, matrix: List[List[int]]) -> int:
cnt=Counter()
for row in matrix:
cnt[tuple(i for i,x in enumerate(row) if x!=0)]+=1
cnt[tuple(i for i,x in enumerate(row) if x==0)]+=1
return max(cnt.values())
代码二
from collections import Counter
class Solution:
def maxEqualRowsAfterFlips(self, matrix) -> int:
cnt=Counter()
for row in matrix:
cnt[tuple(i for i,x in enumerate(row) if x!=0)]+=1
cnt[tuple(i for i,x in enumerate(row) if x==0)]+=1
print(cnt)
return max(cnt.values())
if __name__=="__main__":
solution=Solution()
# matrix = [[0,1],[1,1]]
matrix = [[0,0,0],[0,0,1],[1,1,0]]
res=solution.maxEqualRowsAfterFlips(matrix)
print(res)
# Counter({(2,): 2, (0, 1): 2, (): 1, (0, 1, 2): 1})