问题
A list:
a = ['a', 'b', 'c', 3, 4, 'd', 6, 7, 8]
I want a list using a subset of a using a[0:2],a[4], a[6:],
that is I want a list ['a', 'b', 4, 6, 7, 8]
回答1:
Try new_list = a[0:2] + [a[4]] + a[6:].
Or more generally, something like this:
from itertools import chain
new_list = list(chain(a[0:2], [a[4]], a[6:]))
This works with other sequences as well, and is likely to be faster.
Or you could do this:
def chain_elements_or_slices(*elements_or_slices):
new_list = []
for i in elements_or_slices:
if isinstance(i, list):
new_list.extend(i)
else:
new_list.append(i)
return new_list
new_list = chain_elements_or_slices(a[0:2], a[4], a[6:])
But beware, this would lead to problems if some of the elements in your list were themselves lists.
To solve this, either use one of the previous solutions, or replace a[4] with a[4:5] (or more generally a[n] with a[n:n+1]).
回答2:
Suppose
a = ['a', 'b', 'c', 3, 4, 'd', 6, 7, 8]
and the list of indexes is stored in
b= [0, 1, 2, 4, 6, 7, 8]
then a simple one-line solution will be
c = [a[i] for i in b]
回答3:
The following definition might be more efficient than the first solution proposed
def new_list_from_intervals(original_list, *intervals):
n = sum(j - i for i, j in intervals)
new_list = [None] * n
index = 0
for i, j in intervals :
for k in range(i, j) :
new_list[index] = original_list[k]
index += 1
return new_list
then you can use it like below
new_list = new_list_from_intervals(original_list, (0,2), (4,5), (6, len(original_list)))
来源:https://stackoverflow.com/questions/19252301/creating-a-new-list-with-subset-of-list-using-index-in-python