99

I want to create a list that will contain the last 5 values entered into it.

Here is an example:

>>> l = []
>>> l.append('apple')
>>> l.append('orange')
>>> l.append('grape')
>>> l.append('banana')
>>> l.append('mango')
>>> print(l)
['apple', 'orange', 'grape', 'banana', 'mango']
>>> l.append('kiwi')
>>> print(l)  # only 5 items in list
['orange', 'grape', 'banana', 'mango', 'kiwi']

So, in Python, is there any way to achieve what is demonstrated above? The variable does not need to be a list, I just used it as an example.

7 Answers 7

173

You might want to use a collections.deque object with the maxlen constructor argument instead:

>>> l = collections.deque(maxlen=5)
>>> l.append('apple')
>>> l.append('orange')
>>> l.append('grape')
>>> l.append('banana')
>>> l.append('mango')
>>> print(l)
deque(['apple', 'orange', 'grape', 'banana', 'mango'], maxlen=5)
>>> l.append('kiwi')
>>> print(l)  # only 5 items in list
deque(['orange', 'grape', 'banana', 'mango', 'kiwi'], maxlen=5)
8
  • +1, nice -- I was about to suggest subclassing list ala gnibbler but I suspected there might be a pre-built solution.
    – senderle
    Commented May 10, 2011 at 3:18
  • How python implement the solution? Does deque pop out left element when new element is added?
    – xiao 啸
    Commented May 10, 2011 at 5:57
  • 2
    @xiao it is a double ended queue which means you can efficiently add to either end. In fact there is a appendleft method to append to the front of the deque. If a maxlen is present and append/appendleft will go over one item is removed from the other end.
    – lambacck
    Commented May 10, 2011 at 13:47
  • 2
    print(list(l)) will just print the contents
    – dxander
    Commented Jun 22, 2019 at 18:20
  • 1
    Please notice this solution is slow for copies of large chunks, as it is a doubly linked list, as opposed to a simple list which is a c array.
    – Gulzar
    Commented Apr 7, 2020 at 19:55
17

I ran into this same issue... maxlen=5 from deque was NOT a supported option due to access speed / reliability issues.

SIMPLE Solution:

l = []
l.append(x)                         # add 'x' to right side of list
l = l[-5:]                          # maxlen=5

After you append, just redefine 'l' as the most recent five elements of 'l'.

print(l)

Call it Done.

For your purposes you could stop right there... but I needed a popleft(). Whereas pop() removes an item from the right where it was just appended... pop(0) removes it from the left:

if len(l) == 5:                     # if the length of list 'l' has reached 5 
    right_in_left_out = l.pop(0)    # l.popleft()
else:                               #
    right_in_left_out = None        # return 'None' if not fully populated

Hat tip to James at Tradewave.net

No need for class functions or deque.

Further... to append left and pop right:

l = []
l.insert(0, x)                      # l.appendleft(x)
l = l[-5:]                          # maxlen=5

Would be your appendleft() equivalent should you want to front load your list without using deque

Finally, if you choose to append from the left...

if len(l) == 5:                     # if the length of list 'l' has reached 5 
    left_in_right_out = l.pop()     # pop() from right side
else:                               #
    left_in_right_out = None        # return 'None' if not fully populated
1
  • 1
    Would be interesting to see the performance differences between the solutions mentioned on this page. I like this answer a lot, but I wonder whether I'm missing something here. Why isn't everybody doing it this way?
    – oelna
    Commented Nov 18, 2022 at 12:18
15

You could subclass list

>>> class L(list):
...     def append(self, item):
...         list.append(self, item)
...         if len(self) > 5: del self[0]
... 
>>> l = L()
>>> l.append('apple')
>>> l.append('orange')
>>> l.append('grape')
>>> l.append('banana')
>>> l.append('mango')
>>> print(l)
['apple', 'orange', 'grape', 'banana', 'mango']
>>> l.append('kiwi')
>>> print(l)
['orange', 'grape', 'banana', 'mango', 'kiwi']
>>> 
2
  • 3
    You'd also need to extend the insert, extend and setitem methods (l[1:1] = range(100)) for this to be foolproof. Commented Oct 22, 2012 at 11:57
  • 2
    and maybe need to override __add__ also
    – wsdzbm
    Commented Sep 23, 2015 at 17:53
9

deque is slow for random access and does not support slicing. Following on gnibbler's suggestion, I put together a complete list subclass.

However, it is designed to "roll" right-to-left only. For example, insert() on a "full" list will have no effect.

class LimitedList(list):

    # Read-only
    @property
    def maxLen(self):
        return self._maxLen

    def __init__(self, *args, **kwargs):
        self._maxLen = kwargs.pop("maxLen")
        list.__init__(self, *args, **kwargs)

    def _truncate(self):
        """Called by various methods to reinforce the maximum length."""
        dif = len(self)-self._maxLen
        if dif > 0:
            self[:dif]=[]

    def append(self, x):
        list.append(self, x)
        self._truncate()

    def insert(self, *args):
        list.insert(self, *args)
        self._truncate()

    def extend(self, x):
        list.extend(self, x)
        self._truncate()

    def __setitem__(self, *args):
        list.__setitem__(self, *args)
        self._truncate()

    def __setslice__(self, *args):
        list.__setslice__(self, *args)
        self._truncate()
1

You could use a capped collection in PyMongo - it's overkill, but it does the job nicely:

import pymongo

#create collection
db.createCollection("my_capped_list",{capped:True, max:5})

#do inserts ...

#Read list
l = list(db.my_capped_list.find())

Hence any time you call my_capped_list, you will retrieve the last 5 elements inserted.

0

Most often when you need such a kind of facility, you would write a function which takes the list and then returns the last five elements.

>>> l = range(10)
>>> l[-5:]

But if you really want a custom list, having a cap on five elements, you can override the built-in list and it's methods, you would do something like this, for all it's methods.

class fivelist(list):
    def __init__(self, items):
        list.__init__(self, items[-5:])

    def insert(self, i, x):
        list.insert(self, i, x)
        return self[-5:]

    def __getitem__(self, i):
        if i > 4:
           raise IndexError
        return list.__getitem__(self, i)

    def __setitem__(self, i, x):
        if 0<= i <= 4:
          return list.__setitem__(self, i, x)
        else:
          raise IndexError
3
  • The reason why I can't use a function that returns part of the list is because the list will over time get VERY large, and it will be holding lots of useless data that will never be used again.
    – lanrat
    Commented May 10, 2011 at 3:34
  • That can again be controlled by the function. if the grows large, shed the ones at the beginning. Commented May 10, 2011 at 3:55
  • The return in insert() is pointless, because list.insert is intended to operate in-place.
    – glglgl
    Commented Oct 22, 2012 at 11:30
-3

It can be as simple as the below solution

lst = []
arr_size = int(input("Enter the array size "))
while len(lst) != arr_size:
    arr_elem= int(input("Enter the array element "))
    lst.append(arr_elem)

sum_of_elements = sum(lst)

print("Sum is {0}".format(sum_of_elements))

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