1

I have a list a = [2,4,6,8,10]

I want to get every other value start with the first value at 2 so that would be 2,6,10. Next I want to reverse this value to become 10,6,2. What I tried is a[-1::-2] to reverse and get every other value. However, currently my list has an odd length. Later on my program it will become even as I start to remove values 2,6,10. What is left will be [4,8] and if I do a[-1::-2] That will not get the first value. I tried a[::2].reverse() but that is not allowed. How can I go about doing this

ex:

a = [2,4,6,8,10]
#remove every other element starting at index 0
# [2,4,6] --> reverse --> [6,4,2]
a = [4,8]
#remove every other element starting at index 0
# [4] --> reverse --> [4]
a = [8]
1
  • 1
    I'm not sure how 2,4,10 reverses into 10,6,2.
    – nhgrif
    Nov 16, 2013 at 5:17

2 Answers 2

3

A much faster version would be to use second slicing like this

a = [2, 4, 6, 8, 10, 12]
b = [2, 4, 6, 8, 10]
print a[::2][::-1]
print b[::2][::-1]

But you can also do it like this, with reversed and list functions

print list(reversed(a[::2]))
print list(reversed(b[::2]))

Output

[10, 6, 2]
[10, 6, 2]
0
1
>>> a
[2, 4, 6, 8, 10, 11]

# Works for odd lengths
>>> a[::2][::-1]
[10, 6, 2]

What would be more efficient than this compound slicing -

>>> a = [2,4,6,8,10,12]
>>> if len(a) % 2 == 0: v = a.pop()
... 
>>> a
[2, 4, 6, 8, 10]
>>> a[::-2]
[10, 6, 2]

Your other example. When it is even.

>>> a = [4, 8]
>>> a[-1::-2]
[8]
3
  • This will not work if the length of the list is an odd number. He always wants the first number. Nov 16, 2013 at 5:24
  • This doesn't work in my situation as a[::-2] for a = [4,8] will give me [8] and that is not the first element in the list but thank you for your input
    – Liondancer
    Nov 16, 2013 at 5:25
  • Should be good now. Came up with something that should be more efficient.
    – RyPeck
    Nov 16, 2013 at 5:33

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