1006

How can I do the following in Python?

array = [0, 10, 20, 40]
for (i = array.length() - 1; i >= 0; i--)

I need to have the elements of an array, but from the end to the beginning.

35 Answers 35

1284

You can make use of the reversed function for this as:

>>> array=[0,10,20,40]
>>> for i in reversed(array):
...     print(i)

Note that reversed(...) does not return a list. You can get a reversed list using list(reversed(array)).

  • 184
    can't you just use: array[::-1] ? – kdlannoy Apr 24 '16 at 9:58
  • 127
    @kdlannoy According to the page linked to in the answer, "Compared to extended slicing, such as range(1,4)[::-1], reversed() is easier to read, runs faster, and uses substantially less memory. " – Jim Oldfield Aug 20 '16 at 15:55
  • 4
    When I tested this slicing was about twice as fast (when reversing a 10k elements list and creating a list from it). I did not test memory consumption though. reverse might be faster though, if you don't need to cast to list afterwards. – Dakkaron Aug 23 '16 at 14:01
  • 4
    worth noting that this is not the same as reverse([1,2,3]), n.b. the 'd' at the end ... which is one of the other answers below, which does this in-place, whereas this returns an iterator. – Luciano Oct 8 '16 at 9:36
  • 12
    Why use reversed() instead of slicing? Read the Zen of Python, rule number 7: Readability counts! – kramer65 Apr 25 '17 at 8:26
1221
>>> L = [0,10,20,40]
>>> L[::-1]
[40, 20, 10, 0]

Extended slice syntax is explained well in the Python What's new Entry for release 2.3.5

By special request in a comment this is the most current slice documentation.

  • 10
    It works for any interable, not just lists. Disadvantage is that it's not in place. – Swiss Oct 15 '10 at 7:04
  • 6
    @Tim it returns a slice, so doesn't change the actual list contents – fortran Oct 15 '10 at 7:04
  • 12
    @lunixbochs reversed returns an iterator and not a list in Python 3. – Swiss Oct 15 '10 at 7:09
  • 2
    unless naturally properly encapsulated within the array – Einar Petersen Nov 29 '10 at 11:54
  • 2
    I agree with @Swiss. +1 since the question was I need to have the elements of an array but from the end to the beginning. - reversed returns a listreverseiterator object (Python 2.7.x), which must then be iterated through - reverse slicing returns a reversed list/tuple/str (depending on what you're slicing). @Einar Petersen that is reversing a string, so the output is correct. Try: co2=['ae','ad','ac','ab','aa','z','y','x','w','v','u','t','s','r','q','p','o','n','m','l','k','j','i','h','g','f','e','d','c','b','a'] >>> co2[::-1] – Aaron Newton Aug 12 '12 at 3:25
360
>>> L = [0,10,20,40]
>>> L.reverse()
>>> L
[40, 20, 10, 0]

Or

>>> L[::-1]
[40, 20, 10, 0]
  • 60
    [start:stop:step] so step is -1 – papalagi Sep 26 '12 at 3:36
  • 36
    Detail: The first modifies the list in-place, the second one just returns a new reversed list, but it doesn't modify the original one. – franzlorenzon Oct 29 '13 at 14:02
  • 7
    the second example should be L=L[::-1] to actually reverse the list otherwise you're only returning the values in reverse – robertmoggach Sep 30 '14 at 1:53
  • let's say if i have l= [1,2,3,4,5,6] and n=2 them result must be [6,5,1,2,3,4], how can we do this – Atul Jain Jan 24 '15 at 6:56
  • you could do this: b = l[-n:] b.reverse() l = b + l[:len(l) - n] – Shoaib Shakeel Dec 10 '15 at 9:41
54

This is to duplicate the list:

L = [0,10,20,40]
p = L[::-1]  #  Here p will be having reversed list

This is to reverse the list in-place:

L.reverse() # Here L will be reversed in-place (no new list made)
50

I think that the best way to reverse a list in Python is to do:

a = [1,2,3,4]
a = a[::-1]
print(a)
>>> [4,3,2,1]

The job is done, and now you have a reversed list.

26

For reversing the same list use:

array.reverse()

To assign reversed list into some other list use:

newArray = array[::-1] 
26

Using slicing, e.g. array = array[::-1], is a neat trick and very Pythonic, but a little obscure for newbies maybe. Using the reverse() method is a good way to go in day to day coding because it is easily readable.

However, if you need to reverse a list in place as in an interview question, you will likely not be able to use built in methods like these. The interviewer will be looking at how you approach the problem rather than the depth of Python knowledge, an algorithmic approach is required. The following example, using a classic swap, might be one way to do it:-

def reverse_in_place(lst):      # Declare a function
    size = len(lst)             # Get the length of the sequence
    hiindex = size - 1
    its = size/2                # Number of iterations required
    for i in xrange(0, its):    # i is the low index pointer
        temp = lst[hiindex]     # Perform a classic swap
        lst[hiindex] = lst[i]
        lst[i] = temp
        hiindex -= 1            # Decrement the high index pointer
    print "Done!"

# Now test it!!
array = [2, 5, 8, 9, 12, 19, 25, 27, 32, 60, 65, 1, 7, 24, 124, 654]

print array                    # Print the original sequence
reverse_in_place(array)        # Call the function passing the list
print array                    # Print reversed list


**The result:**
[2, 5, 8, 9, 12, 19, 25, 27, 32, 60, 65, 1, 7, 24, 124, 654]
Done!
[654, 124, 24, 7, 1, 65, 60, 32, 27, 25, 19, 12, 9, 8, 5, 2]

Note that this will not work on Tuples or string sequences, because strings and tuples are immutable, i.e., you cannot write into them to change elements.

  • 9
    The classic swap could be done via lst[hiindex], lst[i] = lst[i], lst[hiindex], I think... ;-) – Samoth Mar 25 '17 at 10:50
  • @Samoth That syntax isn't as clear and the behavior isn't exactly obvious. Distinct steps make more sense. – Anthony Jul 7 '18 at 18:29
  • why people say that things like array[::-1] are pythonic? The python zen teach us that explicit is better than implicit and readability counts. Stuff like that are not explicit and readable at all. – k4ppa Aug 20 '18 at 15:36
  • @k4ppa: array[::-1] is perfectly readable and perfectly explicit if you know Python. "Readable" doesn't mean "someone who has never used Python slicing before must be able to read it"; the [::-1] reversing slice is a ridiculously common idiom in Python (you'll encounter it in existing code all the time), and it's perfectly readable if you regularly use Python. Sure, first10 = [], for i in range(10): first10.append(array[i]) is clear and explicit, but that doesn't make it better than first10 = array[:10]. – ShadowRanger Jan 7 at 18:00
19

I find (contrary to some other suggestions) that l.reverse() is by far the fastest way to reverse a long list in Python 3 and 2. I'd be interested to know if others can replicate these timings.

l[::-1] is probably slower because it copies the list prior to reversing it. Adding the list() call around the iterator made by reversed(l) must add some overhead. Of course if you want a copy of the list or an iterator then use those respective methods, but if you want to just reverse the list then l.reverse() seems to be the fastest way.

Functions

def rev_list1(l):
    return l[::-1]

def rev_list2(l):
    return list(reversed(l))

def rev_list3(l):
    l.reverse()
    return l

List

l = list(range(1000000))

Python 3.5 timings

timeit(lambda: rev_list1(l), number=1000)
# 6.48
timeit(lambda: rev_list2(l), number=1000)
# 7.13
timeit(lambda: rev_list3(l), number=1000)
# 0.44

Python 2.7 timings

timeit(lambda: rev_list1(l), number=1000)
# 6.76
timeit(lambda: rev_list2(l), number=1000)
# 9.18
timeit(lambda: rev_list3(l), number=1000)
# 0.46
  • 4
    list.reverse is the fastest, because it reverses in place – warvariuc Sep 17 '17 at 18:38
  • You're correct list.reverse() is fastest, but you're penalizing reversed (which is best used when you don't want a new list, just to iterate an existing list in reverse order without mutating the original), and the slice (which also avoids mutating the original list, and is typically faster than reversed when the input is small). Yes, if you don't need the copy, anything that copies is more expensive, but a lot of the time, you don't want to mutate the original value. – ShadowRanger Jan 7 at 18:11
  • It looks like reversed still loses to list.reverse() even so, but given it doesn't mutate the input list, it's better in many cases. The loss for reversed is small (~1/6th longer than list.reverse()). – ShadowRanger Jan 7 at 18:17
16
for x in array[::-1]:
    do stuff
  • This slicing method is not very readable. The Pythonic way would be to use the reverse() method. ;-) – SimonM May 31 '18 at 12:21
  • @SimonM reverse() is definitely easier to understand at a glance. – Swiss Jun 1 '18 at 22:22
15

With reversed and list:

>>> list1 = [1,2,3]
>>> reversed_list = list(reversed(list1))
>>> reversed_list
>>> [3, 2, 1]
9
array=[0,10,20,40]
for e in reversed(array):
  print e
7

Using reversed(array) would be the likely best route.

>>> array = [1,2,3,4]
>>> for item in reversed(array):
>>>     print item

Should you need to understand how could implement this without using the built in reversed.

def reverse(a):
    midpoint = len(a)/2
    for item in a[:midpoint]:
        otherside = (len(a) - a.index(item)) - 1
        temp = a[otherside]
        a[otherside] = a[a.index(item)]
        a[a.index(item)] = temp
    return a

This should take O(N) time.

  • Was looking for how to do that without using the reverse function. Thanks. – Bernard 'Beta Berlin' Parah Jun 18 '16 at 20:50
  • Or to reverse in place use list = list.reverse() – SimonM May 31 '18 at 12:23
5

If you want to store the elements of reversed list in some other variable, then you can use revArray = array[::-1] or revArray = list(reversed(array)).

But the first variant is slightly faster:

z = range(1000000)
startTimeTic = time.time()
y = z[::-1]
print("Time: %s s" % (time.time() - startTimeTic))

f = range(1000000)
startTimeTic = time.time()
g = list(reversed(f))
print("Time: %s s" % (time.time() - startTimeTic))

Output:

Time: 0.00489711761475 s
Time: 0.00609302520752 s
  • 2
    Next time, you might want to use timeit. – grooveplex Jul 28 '16 at 8:28
5

ORGANIZING VALUES:

In Python, lists' order too can be manipulated with sort, organizing your variables in numerical/alphabetical order:

Temporarily:

print(sorted(my_list))

Permanent:

my_list.sort(), print(my_list)

You can sort with the flag "reverse=True":

print(sorted(my_list, reverse=True))

or

my_list.sort(reverse=True), print(my_list)

WITHOUT ORGANIZING

Maybe you do not want to sort values, but only reverse the values. Then we can do it like this:

print(list(reversed(my_list)))

**Numbers have priority over alphabet in listing order. The Python values' organization is awesome.

3

You can also use the bitwise complement of the array index to step through the array in reverse:

>>> array = [0, 10, 20, 40]
>>> [array[~i] for i, _ in enumerate(array)]
[40, 20, 10, 0]

Whatever you do, don't do it this way.

3

Use list comprehension:

[array[n] for n in range(len(array)-1, -1, -1)]
3

Using some logic

Using some old school logic to practice for interviews.

Swapping numbers front to back. Using two pointers index[0] and index[last]

def reverse(array):
    n = array
    first = 0
    last = len(array) - 1
    while first < last:
      holder = n[first]
      n[first] = n[last]
      n[last] = holder
      first += 1
      last -= 1
    return n

input -> [-1 ,1, 2, 3, 4, 5, 6]
output -> [6, 1, 2, 3, 4, 5, -1]
  • If we divide the list in two and swap the first with the last index and the time complexity will be more efficient than the sample listed. – Israel Manzo Jan 2 '19 at 2:17
2

Strictly speaking, the question is not how to return a list in reverse but rather how to reverse a list with an example list name array.

To reverse a list named "array" use array.reverse().

The incredibly useful slice method as described can also be used to reverse a list in place by defining the list as a sliced modification of itself using array = array[::-1].

  • 3
    The last sentence is not true, this does not reverse a list in place; it should say array[:] = array[::-1] – Antti Haapala Feb 16 '15 at 16:17
2
def reverse(text):
    output = []
    for i in range(len(text)-1, -1, -1):
        output.append(text[i])
    return output
2

With minimum amount of built-in functions, assuming it's interview settings

array = [1, 2, 3, 4, 5, 6,7, 8]
inverse = [] #create container for inverse array
length = len(array)  #to iterate later, returns 8 
counter = length - 1  #because the 8th element is on position 7 (as python starts from 0)

for i in range(length): 
   inverse.append(array[counter])
   counter -= 1
print(inverse)
1

The most direct translation of your requirement into Python is this for statement:

for i in xrange(len(array) - 1, -1, -1):
   print i, array[i]

This is rather cryptic but may be useful.

1
def reverse(my_list):
  L = len(my_list)
  for i in range(L/2):
    my_list[i], my_list[L-i - 1] = my_list[L-i-1], my_list[i]
  return my_list
  • Better with // floor division operator. – Valentin May 20 '19 at 7:45
1

You could always treat the list like a stack just popping the elements off the top of the stack from the back end of the list. That way you take advantage of first in last out characteristics of a stack. Of course you are consuming the 1st array. I do like this method in that it's pretty intuitive in that you see one list being consumed from the back end while the other is being built from the front end.

>>> l = [1,2,3,4,5,6]; nl=[]
>>> while l:
        nl.append(l.pop())  
>>> print nl
[6, 5, 4, 3, 2, 1]
1
list_data = [1,2,3,4,5]
l = len(list_data)
i=l+1
rev_data = []
while l>0:
  j=i-l
  l-=1
  rev_data.append(list_data[-j])
print "After Rev:- %s" %rev_data 
1

use

print(reversed(list_name))
1

Another solution would be to use numpy.flip for this

import numpy as np
array = [0, 10, 20, 40]
list(np.flip(array))
[40, 20, 10, 0]
0
>>> l = [1, 2, 3, 4, 5]
>>> print(reduce(lambda acc, x: [x] + acc, l, []))
[5, 4, 3, 2, 1]
  • This solution is about 4.5k times slower than l[::-1], and at the same time much less legible. Functional programming in Python is sadly rather slow. – Dakkaron Aug 23 '16 at 13:58
0

Reversing in-place by switching references of opposite indices:

>>> l = [1,2,3,4,5,6,7]    
>>> for i in range(len(l)//2):
...     l[i], l[-1-i] = l[-1-i], l[i]
...
>>> l
[7, 6, 5, 4, 3, 2, 1]
  • 1
    Works for odd length lists! – user4776653 Oct 25 '16 at 2:01
  • My solution is right! You know how python implements indexing. From right to left you have 0,1,2... and from left to right you have -1,-2,-3.. etc. To reverse a list, you cut it into two parts and you multiply the indexes on the right by their opposites on the left minus one. – user4776653 Oct 25 '16 at 18:49
0

Reverse of a user input values in one line code:

for i in input()[::-1]: print(i,end='')
0

This class uses Python magic methods and iterators for reversing, and reverses a list:

class Reverse(object):
    """ Builds a reverse method using magic methods """

    def __init__(self, data):
        self.data = data
        self.index = len(data)


    def __iter__(self):
        return self

    def __next__(self):
        if self.index == 0:
            raise StopIteration

        self.index = self.index - 1
        return self.data[self.index]


REV_INSTANCE = Reverse([0, 10, 20, 40])

iter(REV_INSTANCE)

rev_list = []
for i in REV_INSTANCE:
    rev_list.append(i)

print(rev_list)  

Output

[40, 20, 10, 0]

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