Python在一定范围内替换数组中的元素

Question

我有一个数组，例如：

Array = [100]*100

然后我想这样做：

Array[0:10] = 1

数组应如下所示：

Array = [1,1,1,1,1,1,1,1,1,1,100,100....,100]

但是Python说不，并且给了我

Array[0:10] = 1 can only assign an iterable

它想要什么，我该如何解决？

Answer 1

你可以使用array[0:10] = [1] * 10，你只需要制作一个你要替换的切片大小的数组。

Answer 2

另一种方法是将你的列表变成一个numpy数组，numpy将broadcast你的值放到数组的整个部分：

import numpy as np

a = np.array([100]*100)

a[0:10] = 1
print(a)

# array([  1,   1,   1,   1,   1,   1,   1,   1,   1,   1, 100, 100, 100,
#        100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100,
#        ... 
#       ])

Answer 3

我给你一个列表的例子：

L = [0 for k in range(100)] # List of 0
L[10:20] = [1 for k in range(10)]

# Output:
L = [0, ..., 0, 1, 1, ..., 1, 0, ..., 0]

您还需要提供一个列表来替换N值。

Answer 4

在这种情况下，双方的操作数类型应该相同

Array[0:10]=[1]*10

Answer 5

lists in python are mutable it's not good to write them in the form [100]*100. You might have problems later when your code gets complicated.

我建议把它写成：

array = [100 for _ in range(100)]
for i in range(10):
    array[i] = 1
print(array)

output: [1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100, 100]

Python在一定范围内替换数组中的元素

问题描述投票：0回答：5

5个回答

lists in python are mutable it's not good to write them in the form [100]*100. You might have problems later when your code gets complicated.

最新问题

Python在一定范围内替换数组中的元素

问题描述 投票：0回答：5

5个回答

lists in python are mutable it's not good to write them in the form [100]*100. You might have problems later when your code gets complicated.

最新问题

问题描述投票：0回答：5