54

I need to do some special operation for the last element in a list. Is there any better way than this?

array = [1,2,3,4,5] 
for i, val in enumerate(array): 
  if (i+1) == len(array): 
    // Process for the last element 
  else: 
    // Process for the other element 
2
  • 1
    Possible duplicate of Identify which iteration you are on in a loop in python Jan 9, 2016 at 19:39
  • 1
    @PaulKenjora He's already using enumerate to do pretty much the same thing in the link you gave. He's asking for a better and more pythonic way to detect the last element, rather than using the approach he listed. Should not be considered a duplicate.
    – Kobato
    Jul 22, 2019 at 1:01

6 Answers 6

68
for item in list[:-1]:
    print "Not last: ", item
print "Last: ", list[-1]

If you don't want to make a copy of list, you can make a simple generator:

# itr is short for "iterable" and can be any sequence, iterator, or generator

def notlast(itr):
    itr = iter(itr)  # ensure we have an iterator
    prev = itr.next()
    for item in itr:
        yield prev
        prev = item

# lst is short for "list" and does not shadow the built-in list()
# 'L' is also commonly used for a random list name
lst = range(4)
for x in notlast(lst):
    print "Not last: ", x
print "Last: ", lst[-1]

Another definition for notlast:

import itertools
notlast = lambda lst:itertools.islice(lst, 0, len(lst)-1)
7
  • 4
    I advise you against using list and iter as variable names as they shadow the builtins Mar 12, 2010 at 1:15
  • I gave you +1, but the code you had there for the iterator case didn't work. I'm going to go in and fix it now.
    – steveha
    Mar 12, 2010 at 1:56
  • A simpler version of your first definition of notlast: def butlast(xs): prev = xs.next() for x in xs: yield prev prev = x (I'd also add a first line: xs = iter(xs)) Mar 12, 2010 at 2:11
  • Following steveha's example, I went ahead and edited my suggestion in. I'm not sure that was really the polite thing to do -- hope you don't mind. Mar 12, 2010 at 4:13
  • @Darius: I'm glad you did it. I don't sit on SO 24h/day, and if OP gets best answer possible, that's good thing.
    – liori
    Mar 12, 2010 at 11:15
41

If your sequence isn't terribly long then you can just slice it:

for val in array[:-1]:
  do_something(val)
else:
  do_something_else(array[-1])
1
  • 9
    +1 for "for/else", but note that if the "do something" code actually involves a break statement (early termination of the loop) then the else code would be skipped. Whether that's relevant in this case is up to the OP, but it should be noted. Mar 12, 2010 at 0:26
9

using itertools

>>> from itertools import repeat, chain,izip
>>> for val,special in izip(array, chain(repeat(False,len(array)-1),[True])):
...     print val, special
... 
1 False
2 False
3 False
4 False
5 True

Version of liori's answer to work on any iterable (doesn't require len() or slicing)

def last_flagged(seq):
    seq = iter(seq)
    a = next(seq)
    for b in seq:
        yield a, False
        a = b
    yield a, True        

mylist = [1,2,3,4,5]
for item,is_last in last_flagged(mylist):
    if is_last:
        print "Last: ", item
    else:
        print "Not last: ", item
1
  • For the first option: With Python 3 izip became the built-in zip so use that instead.
    – Gourneau
    Jul 6, 2021 at 1:54
0

If your logic is never breaking out of the loop then a for...else construct might work:

In [1]: count = 0
   ...: for i in [1, 2, 3]:
   ...:     count +=1
   ...:     print("any item:", i)
   ...: else:
   ...:     if count:
   ...:         print("last item: ", i)
   ...:
any item: 1
any item: 2
any item: 3
last item:  3

You need the count variable just in case the iterable is empty, otherwise the variable i won't be defined.

-3

Simple way with an if condition:

for item in list:
    print "Not last: ", item
    if list.index(item) == len(list)-1:
        print "Last: ", item
1
  • This is slow and doesn't work if the list has duplicates.
    – interjay
    Jul 19, 2020 at 13:38
-4
for i in items:
  if i == items[-1]:
    print 'The last item is: '+i
3
  • This doesn't work when different elements are same like in items = [1,2,1] Jul 2, 2015 at 13:39
  • 1
    Isn't this expensive?
    – IIllIIll
    Jan 9, 2016 at 22:08
  • It works when the elements are in the list multiple times if you use a single variable
    – HCLivess
    Nov 1, 2016 at 14:00

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.