390

I am trying to loop from 100 to 0. How do I do this in Python?

for i in range (100,0) doesn't work.


For discussion of why range works the way it does, see Why are slice and range upper-bound exclusive?.

2
  • 10
    BTW, you probably want to loop from 99 to 0, and rarely from 100 to 0. This affects the answers.
    – Asclepius
    Commented Dec 4, 2016 at 23:31
  • 1
    @Acumenus That was exactly what I searched for when reached here. And for the record the solution is to simply write: range(100)[::-1] (which is automatically translated to range(9, -1, -1)) - Tested in python 3.7
    – Hassan
    Commented Dec 2, 2019 at 10:55

18 Answers 18

557

Try range(100,-1,-1), the 3rd argument being the increment to use (documented here).

("range" options, start, stop, step are documented here)

2
  • 3
    Also I need to use this to delete items from the collection, so that's why just wanted the indices.
    – Joan Venge
    Commented May 15, 2009 at 17:33
  • 5
    the second argument is one less than the final value. so if you put -1 then the range stops at 0, if you put -5, the range stops at -4 (for an increment of -1) Commented Jul 20, 2014 at 14:01
253

In my opinion, this is the most readable:

for i in reversed(range(101)):
    print(i)
6
  • 17
    This is better than the accepted answer since it doesn't actually allocate all the numbers in memory (in Python 3 the accepted answer wouldn't either), plus it's more obvious what is happening.
    – Blixt
    Commented Mar 23, 2012 at 13:52
  • 5
    Python before 2.6 does allocate all numbers, because reversed has no way to tell the xrange to go backwards... (Since Python 2.6 it calls __reversed__().) Commented Jun 21, 2012 at 18:31
  • 1
    I prefer reversed(xrange(len(list))) to xrange(len(list)-1:-1:-1); the latter just looks weird with so many -1's.
    – musiphil
    Commented Sep 7, 2013 at 1:13
  • 2
    xrange() is not available anymore in Python 3 Commented Sep 12, 2019 at 6:38
  • 6
    In Python 3, range behaves the same way as xrange does in 2.7. @hacksoi depends on the use case but let's say you're iterating backwards in a large buffer, let's say it's 10 MB, then creating the reverse indices upfront would take seconds and use up over 50 MB of memory. Using a reversed generator would take milliseconds and only use up a few bytes of memory.
    – Blixt
    Commented Sep 29, 2019 at 6:23
50
for i in range(100, -1, -1)

and some slightly longer (and slower) solution:

for i in reversed(range(101))

for i in range(101)[::-1]
20

Why your code didn't work

You code for i in range (100, 0) is fine, except

the third parameter (step) is by default +1. So you have to specify 3rd parameter to range() as -1 to step backwards.

for i in range(100, -1, -1):
    print(i)

NOTE: This includes 100 & 0 in the output.

There are multiple ways.

Better Way

For pythonic way, check PEP 0322.

This is Python3 pythonic example to print from 100 to 0 (including 100 & 0).

for i in reversed(range(101)):
    print(i)
2
  • 1
    yes, PEP-322 gives us a clear and least error-prone way to reverse iterations.
    – Allen Shen
    Commented Jul 31, 2019 at 20:25
  • 1
    This is good. The recommendation of how to implement reversed in PEP-322 is misleading, so it should be noted that reversed will call __reversed__ on the iterable and return the result, and for range objects this is a lazy evaluated range_object iterator. In short: using this method is still lazy evaluation.
    – Ruzihm
    Commented Oct 24, 2019 at 16:07
19

Generally in Python, you can use negative indices to start from the back:

numbers = [10, 20, 30, 40, 50]
for i in xrange(len(numbers)):
    print numbers[-i - 1]

Result:

50
40
30
20
10
6

Another solution:

z = 10
for x in range (z):
   y = z-x
   print y

Result:

10
9
8
7
6
5
4
3
2
1

Tip: If you are using this method to count back indices in a list, you will want to -1 from the 'y' value, as your list indices will begin at 0.

4

The simple answer to solve your problem could be like this:

for i in range(100):
    k = 100 - i
    print(k)
4

You might want to use the reversed function in python. Before we jump in to the code we must remember that the range function always returns a list (or a tuple I don't know) so range(5) will return [0, 1, 2, 3, 4]. The reversed function reverses a list or a tuple so reversed(range(5)) will be [4, 3, 2, 1, 0] so your solution might be:

for i in reversed(range(100)):
    print(i)
1

for var in range(10,-1,-1) works

1

Short and sweet. This was my solution when doing codeAcademy course. Prints a string in rev order.

def reverse(text):
    string = ""
    for i in range(len(text)-1,-1,-1):
        string += text[i]
    return string    
0
1

You can always do increasing range and subtract from a variable in your case 100 - i where i in range( 0, 101 ).

for i in range( 0, 101 ):
    print 100 - i
1
  • I like this method because Numba can't handle loops with range(X,-1,-1) but this way of structuring it works just fine. Sure a particular use case, but I couldn't think of this when staring at the loop, so thanks!
    – Matt
    Commented Mar 3, 2022 at 14:20
1

I wanted to loop through a two lists backwards at the same time so I needed the negative index. This is my solution:

a= [1,3,4,5,2]
for i in range(-1, -len(a), -1):
    print(i, a[i])

Result:

-1 2
-2 5
-3 4
-4 3
-5 1
1

You can also create a custom reverse mechanism in python. Which can be use anywhere for looping an iterable backwards

class Reverse:
    """Iterator for looping over a sequence backwards"""
    def __init__(self, seq):
        self.seq = seq
        self.index = len(seq)

    def __iter__(self):
        return self

    def __next__(self):
        if self.index == 0:
            raise StopIteration
        self.index -= 1
        return self.seq[self.index]


>>> d = [1,2,3,4,5]
>>> for i in Reverse(d):
...   print(i)
... 
5
4
3
2
1
0

I tried this in one of the codeacademy exercises (reversing chars in a string without using reversed nor :: -1)

def reverse(text):
    chars= []
    l = len(text)
    last = l-1
    for i in range (l):
        chars.append(text[last])
        last-=1

    result= ""   
    for c in chars:
        result += c
    return result
print reverse('hola')
0
0

Oh okay read the question wrong, I guess it's about going backward in an array? if so, I have this:

array = ["ty", "rogers", "smith", "davis", "tony", "jack", "john", "jill", "harry", "tom", "jane", "hilary", "jackson", "andrew", "george", "rachel"]


counter = 0   

for loop in range(len(array)):
    if loop <= len(array):
        counter = -1
        reverseEngineering = loop + counter
        print(array[reverseEngineering])
1
  • It looks like your answer is the copy paste of the test you made. Please try to post a minimal example: the use of global and time is not relevant for the inital question. Commented May 27, 2019 at 21:06
0

Generally reversed() and [::-1] are the simplest options for existing lists. I did found this:

For a comparatively large list, under time constraints, it seems that the reversed() function performs faster than the slicing method. This is because reversed() just returns an iterator that iterates the original list in reverse order, without copying anything whereas slicing creates an entirely new list, copying every element from the original list. For a list with 10^6 Values, the reversed() performs almost 20,000 better than the slicing method. If there is a need to store the reverse copy of data then slicing can be used but if one only wants to iterate the list in reverse manner, reversed() is definitely the better option.

source: https://www.geeksforgeeks.org/python-reversed-vs-1-which-one-is-faster/

But my experiments do not confirm this:

For 10^5

$ python3 -m timeit -n 1000 -v "[x for x in range(100_000)[::-1]]"
raw times: 2.63 sec, 2.52 sec, 2.53 sec, 2.53 sec, 2.52 sec

1000 loops, best of 5: 2.52 msec per loop

$ python3 -m timeit -n 1000 -v "[x for x in reversed(range(100_000))]"
raw times: 2.64 sec, 2.52 sec, 2.52 sec, 2.52 sec, 2.51 sec

1000 loops, best of 5: 2.51 msec per loop

For 10^6

$ python3 -m timeit -n 1000 -v "[x for x in range(1_000_000)[::-1]]"
raw times: 31.9 sec, 31.8 sec, 31.9 sec, 32 sec, 32 sec

1000 loops, best of 5: 31.8 msec per loop

$ python3 -m timeit -n 1000 -v "[x for x in reversed(range(1_000_000))]"
raw times: 32.5 sec, 32 sec, 32.3 sec, 32 sec, 31.6 sec

1000 loops, best of 5: 31.6 msec per loop

Did I miss something?

But if you just wanna generate reversed list, there is no difference between reversed(range()) and range(n, -1, -1).

-1

It works well with me

for i in range(5)[::-1]:
    print(i,end=' ')

output : 4 3 2 1 0

1
  • It is a good answer. For example: [x for x in range(1,5)[::-1]]
    – mirik
    Commented Oct 10, 2022 at 12:34
-2
a = 10
for i in sorted(range(a), reverse=True):
    print i
2
  • Welcome to Stack Overflow! Please consider editing your post to add more explanation about what your code does and why it will solve the problem. An answer that mostly just contains code (even if it's working) usually wont help the OP to understand their problem. Commented Sep 22, 2015 at 13:45
  • You realize that using sorted will needlessly store the entire list in memory, right? This is wasteful and is not feasible for large a.
    – Asclepius
    Commented Dec 4, 2016 at 23:28

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