Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a list of about 40 entries. And I frequently want to append an item to the start of the list (with id 0) and want to delete the last entry (with id 40) of the list.

how do i do this the best?

like: (example with 5 entries)

    [0] = "herp"
    [1] = "derp"
    [2] = "blah"
    [3] = "what"
    [4] = "da..."

after adding "wuggah" and deleting last it should be like:

    [0] = "wuggah"
    [1] = "herp"
    [2] = "derp"
    [3] = "blah"
    [4] = "what"

or appending one and deleting first.

And I don't want to end up manually moving them one after another all of the entries to the next id.

share|improve this question
    
I suggest you research a bit more before posting.. The answer is literally on every first page of introduction to lists. –  Mellkor Apr 14 '12 at 17:30
2  
"And I don't want to end up manually moving them one after another all of the entries to the next id." Internally, a list object allocates a larger list than the size of the list that is currently used (10 elements, but list is actually a lot bigger than that). So behind the scene it is doing all that for you - this amortized the running time of insertion, pop at a particular position and other operates as low as possible. wiki.python.org/moin/TimeComplexity –  CppLearner Apr 14 '12 at 17:37

4 Answers 4

up vote 5 down vote accepted

Use collections.deque:

>>> import collections
>>> q = collections.deque(["herp", "derp", "blah", "what", "da.."])
>>> q.appendleft('wuggah')
>>> q.pop()
'da..'
>>> q
deque(['wuggah', 'herp', 'derp', 'blah', 'what'])
share|improve this answer
    
Thank you. Is this the same as myList.insert(0, "wuggah")? –  user1301036 Apr 14 '12 at 17:32
2  
@wagglewax Yes, except this is an O(1) operation instead of O(n). –  Lattyware Apr 14 '12 at 17:36

Use insert() to place an item at the beginning of the list:

myList.insert(0, "wuggah")

Use pop() to remove and return an item in the list. Pop with no arguments pops the last item in the list

myList.pop() #removes and returns "da..."
share|improve this answer

Use collections.deque

In [21]: from collections import deque

In [22]: d = deque([], 3)   

In [24]: for c in '12345678':
   ....:     d.appendleft(c)
   ....:     print d
   ....:
deque(['1'], maxlen=3)
deque(['2', '1'], maxlen=3)
deque(['3', '2', '1'], maxlen=3)
deque(['4', '3', '2'], maxlen=3)
deque(['5', '4', '3'], maxlen=3)
deque(['6', '5', '4'], maxlen=3)
deque(['7', '6', '5'], maxlen=3)
deque(['8', '7', '6'], maxlen=3)
share|improve this answer
1  
Using the max length is a better solution here, more elegant, that said, the OP wanted to prepend the item, not append it - you want deque.appendleft(). Edited. –  Lattyware Apr 14 '12 at 17:34

Here's a one-liner, but it probably isn't as efficient as some of the others ...

myList=["wuggah"] + myList[:-1]

Also note that it creates a new list, which may not be what you want ...

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.