162

I sometimes need to iterate a list in Python looking at the "current" element and the "next" element. I have, till now, done so with code like:

for current, next in zip(the_list, the_list[1:]):
    # Do something

This works and does what I expect, but is there's a more idiomatic or efficient way to do the same thing?

6
  • Check MizardX answer for this question. But i don't think this solution is more idiomatic than yours. Mar 25 '11 at 16:00
  • 2
    Take a look at Build a Basic Python Iterator.
    – mkluwe
    Mar 25 '11 at 16:08
  • 45
    since no one else has mentioned it, I'll be that guy, and point out that using next this way masks a built-in.
    – senderle
    Mar 27 '11 at 14:53
  • @senderle Maybe it’s Python 2…
    – Quintec
    Jul 2 '14 at 14:53
  • 3
    @thecoder16: next is also a built-in function in Python 2.
    – zondo
    Mar 27 '17 at 20:10

12 Answers 12

156

Here's a relevant example from the itertools module docs:

import itertools
def pairwise(iterable):
    "s -> (s0,s1), (s1,s2), (s2, s3), ..."
    a, b = itertools.tee(iterable)
    next(b, None)
    return zip(a, b)   

For Python 2, you need itertools.izip instead of zip:

import itertools
def pairwise(iterable):
    "s -> (s0,s1), (s1,s2), (s2, s3), ..."
    a, b = itertools.tee(iterable)
    next(b, None)
    return itertools.izip(a, b)

How this works:

First, two parallel iterators, a and b are created (the tee() call), both pointing to the first element of the original iterable. The second iterator, b is moved 1 step forward (the next(b, None)) call). At this point a points to s0 and b points to s1. Both a and b can traverse the original iterator independently - the izip function takes the two iterators and makes pairs of the returned elements, advancing both iterators at the same pace.

One caveat: the tee() function produces two iterators that can advance independently of each other, but it comes at a cost. If one of the iterators advances further than the other, then tee() needs to keep the consumed elements in memory until the second iterator comsumes them too (it cannot 'rewind' the original iterator). Here it doesn't matter because one iterator is only 1 step ahead of the other, but in general it's easy to use a lot of memory this way.

And since tee() can take an n parameter, this can also be used for more than two parallel iterators:

def threes(iterator):
    "s -> (s0,s1,s2), (s1,s2,s3), (s2, s3,4), ..."
    a, b, c = itertools.tee(iterator, 3)
    next(b, None)
    next(c, None)
    next(c, None)
    return zip(a, b, c)
3
  • 9
    zip(ł, ł[1:]) is much shorter and pythonic Jul 16 '16 at 17:18
  • 3
    @noɥʇʎԀʎzɐɹƆ: No, it doesn't work on every iterable and makes an unnecessary copy when used on lists. Using functions is pythonic.
    – Ry-
    Oct 24 '17 at 16:13
  • This function implemented in funcy module: funcy.pairwise: funcy.readthedocs.io/en/stable/seqs.html#pairwise
    – ADR
    Jan 13 '18 at 13:50
42

Roll your own!

def pairwise(iterable):
    it = iter(iterable)
    a = next(it, None)

    for b in it:
        yield (a, b)
        a = b
4
  • 2
    Just what I needed! Has this been immortalized as a python method, or do we need to keep rolling?
    – uhoh
    Jan 20 '18 at 23:45
  • 1
    @uhoh: Hasn’t yet as far as I know!
    – Ry-
    Jan 20 '18 at 23:46
  • I'm surprised this is not the accepted answer. No imports and the logic behind it is very easy to understand. +1 definitely.
    – salfaris
    Aug 17 '20 at 4:04
  • 5
    It will soon be included as itertools.pairwise in 3.10 ! Apr 23 at 1:31
25

I’m just putting this out, I’m very surprised no one has thought of enumerate().

for (index, thing) in enumerate(the_list):
    if index < len(the_list):
        current, next_ = thing, the_list[index + 1]
        #do something
3
  • 14
    Actually, the if can also be removed if you use slicing: for (index, thing) in enumerate(the_list[:-1]): current, next_ = thing, the_list[index + 1] Mar 25 '15 at 5:05
  • 3
    This should really be the answer, it doesn't rely on any extra imports and works great. Sep 27 '18 at 13:09
  • 2
    Though, it does not work for non-indexable iterables so it's not a generic solution.
    – wim
    Apr 20 '20 at 20:05
22

Since the_list[1:] actually creates a copy of the whole list (excluding its first element), and zip() creates a list of tuples immediately when called, in total three copies of your list are created. If your list is very large, you might prefer

from itertools import izip, islice
for current_item, next_item in izip(the_list, islice(the_list, 1, None)):
    print(current_item, next_item)

which does not copy the list at all.

8
  • 4
    note that in python 3.x izip is suppressed of itertools and you should use builtin zip Mar 25 '11 at 16:04
  • 1
    Actually, doesn't the_list[1:] just create a slice object rather than a copy of almost the whole list -- so the OP's technique isn't quite as wasteful as you make it sound.
    – martineau
    Mar 25 '11 at 16:14
  • 3
    I think [1:] creates the slice object (or possibly "1:"), which is passed to __slice__ on the list, which then returns a copy containing only the selected elements. One idiomatic way to copy a list is l_copy = l[:] (which I find ugly and unreadable -- prefer l_copy = list(l))
    – dcrosta
    Mar 25 '11 at 16:16
  • 4
    @dcrosta: There is no __slice__ special method. the_list[1:] is equivalent to the_list[slice(1, None)], which in turn is equivalent to list.__getitem__(the_list, slice(1, None)). Mar 25 '11 at 16:47
  • 4
    @martineau: The copy created by the_list[1:] is only a shallow copy, so it consists only of one pointer per list item. The more memory intensive part is the zip() itself, because it will create a list of one tuple instance per list item, each of which will contain two pointers to the two items and some additional information. This list will consume nine times the amount of memory the copy caused by [1:] consumes. Mar 25 '11 at 17:01
15

Iterating by index can do the same thing:

#!/usr/bin/python
the_list = [1, 2, 3, 4]
for i in xrange(len(the_list) - 1):
    current_item, next_item = the_list[i], the_list[i + 1]
    print(current_item, next_item)

Output:

(1, 2)
(2, 3)
(3, 4)
1
  • Your answer was more previous and current instead of current and next, as in the question. I made an edit improving the semantics so that i is always the index of the current element.
    – Bengt
    Sep 24 '12 at 13:14
13

Starting in Python 3.10, this is the exact role of the pairwise function:

from itertools import pairwise

list(pairwise([1, 2, 3, 4, 5]))
# [(1, 2), (2, 3), (3, 4), (4, 5)]

or simply pairwise([1, 2, 3, 4, 5]) if you don't need the result as a list.

4

This is now a simple Import As of 16th May 2020

from more_itertools import pairwise
for current, next in pairwise(your_iterable):
  print(f'Current = {current}, next = {nxt}')

Docs for more-itertools Under the hood this code is the same as that in the other answers, but I much prefer imports when available.

If you don't already have it installed then: pip install more-itertools

Example

For instance if you had the fibbonnacci sequence, you could calculate the ratios of subsequent pairs as:

from more_itertools import pairwise
fib= [1,1,2,3,5,8,13]
for current, nxt in pairwise(fib):
    ratio=current/nxt
    print(f'Curent = {current}, next = {nxt}, ratio = {ratio} ')
3

I am really surprised nobody has mentioned the shorter, simpler and most importantly general solution:

Python 3:

from itertools import islice

def n_wise(iterable, n):
    return zip(*(islice(iterable, i, None) for i in range(n)))

Python 2:

from itertools import izip, islice

def n_wise(iterable, n):
    return izip(*(islice(iterable, i, None) for i in xrange(n)))

It works for pairwise iteration by passing n=2, but can handle any higher number:

>>> for a, b in n_wise('Hello!', 2):
>>>     print(a, b)
H e
e l
l l
l o
o !

>>> for a, b, c, d in n_wise('Hello World!', 4):
>>>     print(a, b, c, d)
H e l l
e l l o
l l o
l o   W
o   W o
  W o r
W o r l
o r l d
r l d !
0

Pairs from a list using a list comprehension

the_list = [1, 2, 3, 4]
pairs = [[the_list[i], the_list[i + 1]] for i in range(len(the_list) - 1)]
for [current_item, next_item] in pairs:
    print(current_item, next_item)

Output:

(1, 2)
(2, 3)
(3, 4)
0

As others have pointed out, itertools.pairwise() is the way to go on recent versions of Python. However, for 3.8+, a fun and somewhat more concise (compared to the other solutions that have been posted) option that does not require an extra import comes via the walrus operator:

def pairwise(iterable):
  a = next(iterable)
  yield from ((a, a := b) for b in iterable)
-1

A basic solution:

def neighbors( list ):
  i = 0
  while i + 1 < len( list ):
    yield ( list[ i ], list[ i + 1 ] )
    i += 1

for ( x, y ) in neighbors( list ):
  print( x, y )
-2
code = '0016364ee0942aa7cc04a8189ef3'
# Getting the current and next item
print  [code[idx]+code[idx+1] for idx in range(len(code)-1)]
# Getting the pair
print  [code[idx*2]+code[idx*2+1] for idx in range(len(code)/2)]
0

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