【LeetCode】861. Score After Flipping Matrix 解题报告(Python)
标签(空格分隔): LeetCode
作者: 负雪明烛
id: fuxuemingzhu
个人博客: http://fuxuemingzhu.cn/
题目地址:https://leetcode.com/problems/score-after-flipping-matrix/description/
题目描述:
We have a two dimensional matrix A where each value is 0 or 1.
A move consists of choosing any row or column, and toggling each value in that row or column: changing all 0s to 1s, and all 1s to 0s.
After making any number of moves, every row of this matrix is interpreted as a binary number, and the score of the matrix is the sum of these numbers.
Return the highest possible score.
Example 1:
Input: [[0,0,1,1],[1,0,1,0],[1,1,0,0]]
Output: 39
Explanation:
Toggled to [[1,1,1,1],[1,0,0,1],[1,1,1,1]].
0b1111 + 0b1001 + 0b1111 = 15 + 9 + 15 = 39
Note:
1 <= A.length <= 20
1 <= A[0].length <= 20
A[i][j] is 0 or 1.
题目大意
题目中给了一个数组A,这个数组中只包含0,1.现在需要整行或者整列的进行toggle操作。目标是进行一波toggle操作之后,把A中的每行数字转化成二进制数,是最终得到的二进制数的和最大。
解题方法
题目很烧脑,使用什么样的操作规则才能使得得到的最终数组二进制和最大。
首先,第一列肯定要全部变成1,很显然位数恒定时,1开头的二进制数要比任何0开头的都要大。
其次,我们采取贪心算法,让每一列中1的个数尽可能多。怎么理解这句话呢?
这和我们最终的目标有关,因为我们要求每行数字都转成二进制数之后的和
,所以,在同一列中,1出现在哪一行对结果一样的。
如果还不明白,看我的分析:
初始状态:
[0,0,1,1]
[1,0,1,0]
[1,1,0,0]
首列置为 1:
[1,1,0,0]
[1,0,1,0]
[1,1,0,0]
每一列 1 的个数大于 0 的个数:
[1,1,1,1]
[1,0,0,1]
[1,1,1,1]
计算结果:15 + 9 + 15 = 39.
其实,最后的计算结果完全可以这么算:
= 2^3 * 3(第一列有3个1) + 2^2 * 2(第二列有2个1)
+ 2^1 * 2(第三列有2个1) + 2^0 * 3(第四列有3个1)
= 8*3 + 4*2 + 2*2 + 1*3
= 24 + 8 + 4 + 3
= 39
即,我们只关心这一列出现的1的个数,不用关心1出现的位置。
代码如下:
class Solution(object):
def matrixScore(self, A):
""" :type A: List[List[int]] :rtype: int """
rows, cols = len(A), len(A[0])
for row in range(rows):
if A[row][0] == 0:
A[row] = self.toggle_row(A[row])
for col in range(1, cols):
col_array = [A[row][col] for row in range(rows)]
sum_col_array = sum(col_array)
if sum_col_array <= rows / 2:
col_array = self.toggle_col(col_array)
for row in range(rows):
A[row][col] = col_array[row]
bin_row = []
for row in range(rows):
bin_row.append(int("".join(map(str, A[row])), 2))
return sum(bin_row)
def toggle_row(self, row_array):
return [0 if x == 1 else 1 for x in row_array]
def toggle_col(self, col_array):
return [0 if x == 1 else 1 for x in col_array]
日期
2018 年 7 月 19 日 ———— 今天主要在忙实验室项目,刷题有点晚了