611

I want to create an empty list (or whatever is the best way) that can hold 10 elements.

After that I want to assign values in that list, for example this is supposed to display 0 to 9:

s1 = list();
for i in range(0,9):
   s1[i] = i

print  s1

But when I run this code, it generates an error or in another case it just displays [] (empty).

Can someone explain why?

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  • 1
    possible duplicate of Initializing a list to a known number of elements in Python – lumbric Jan 3 '15 at 0:01
  • 8
    An “empty list” ([]) by definition has zero elements. What you apparently want is a list of falsy values like None, 0, or ''. – dan04 Nov 29 '16 at 22:36
  • 1
    To generate a list from 0 to 9 you should actually use for i in range(0, 10), which means for (int i = 0, i < 10, i++). – Atcold Feb 2 '17 at 14:29

15 Answers 15

936

You cannot assign to a list like lst[i] = something, unless the list already is initialized with at least i+1 elements. You need to use append to add elements to the end of the list. lst.append(something).

(You could use the assignment notation if you were using a dictionary).

Creating an empty list:

>>> l = [None] * 10
>>> l
[None, None, None, None, None, None, None, None, None, None]

Assigning a value to an existing element of the above list:

>>> l[1] = 5
>>> l
[None, 5, None, None, None, None, None, None, None, None]

Keep in mind that something like l[15] = 5 would still fail, as our list has only 10 elements.

range(x) creates a list from [0, 1, 2, ... x-1]

# 2.X only. Use list(range(10)) in 3.X.
>>> l = range(10)
>>> l
[0, 1, 2, 3, 4, 5, 6, 7, 8, 9]

Using a function to create a list:

>>> def display():
...     s1 = []
...     for i in range(9): # This is just to tell you how to create a list.
...         s1.append(i)
...     return s1
... 
>>> print display()
[0, 1, 2, 3, 4, 5, 6, 7, 8]

List comprehension (Using the squares because for range you don't need to do all this, you can just return range(0,9) ):

>>> def display():
...     return [x**2 for x in range(9)]
... 
>>> print display()
[0, 1, 4, 9, 16, 25, 36, 49, 64]
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  • 18
    What do you mean by "You cannot assign to a list like lst[i] = something" - of course you can! What you can't do is to assign to a non-existent element beyond the current list length – Sergey Apr 23 '18 at 23:28
  • 7
    "unless the list already is initialized with at least i+1 elements".... – MrR Oct 30 '18 at 13:30
  • 6
    you can do this: a = [0 for _ in range(10)] – Kamiar Dec 19 '18 at 21:55
  • Is it possible to do this using list() function? – Raul Chiarella Mar 10 at 20:27
139

Try this instead:

lst = [None] * 10

The above will create a list of size 10, where each position is initialized to None. After that, you can add elements to it:

lst = [None] * 10
for i in range(10):
    lst[i] = i

Admittedly, that's not the Pythonic way to do things. Better do this:

lst = []
for i in range(10):
    lst.append(i)

Or even simpler, in Python 2.x you can do this to initialize a list with values from 0 to 9:

lst = range(10)

And in Python 3.x:

lst = list(range(10))
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  • 3
    The other great thing about this is that you can initialise a list with default values. lst = [''] * 10 or lst = [0] * 10 – Anthony Manning-Franklin Sep 14 '16 at 3:47
  • 2
    A variant on the comprehension example. If all elements in the array need to be empty at initialization, use: arr = [None for _ in range(10)]. – Doug R. Mar 31 '17 at 18:23
  • This format is lst = list(range(10)) is looked nice. Like the same length in Java int [] arr = new int[10] – ChuckZHB Jul 1 at 14:54
97

varunl's currently accepted answer

 >>> l = [None] * 10
 >>> l
 [None, None, None, None, None, None, None, None, None, None]

Works well for non-reference types like numbers. Unfortunately if you want to create a list-of-lists you will run into referencing errors. Example in Python 2.7.6:

>>> a = [[]]*10
>>> a
[[], [], [], [], [], [], [], [], [], []]
>>> a[0].append(0)
>>> a
[[0], [0], [0], [0], [0], [0], [0], [0], [0], [0]]
>>> 

As you can see, each element is pointing to the same list object. To get around this, you can create a method that will initialize each position to a different object reference.

def init_list_of_objects(size):
    list_of_objects = list()
    for i in range(0,size):
        list_of_objects.append( list() ) #different object reference each time
    return list_of_objects


>>> a = init_list_of_objects(10)
>>> a
[[], [], [], [], [], [], [], [], [], []]
>>> a[0].append(0)
>>> a
[[0], [], [], [], [], [], [], [], [], []]
>>> 

There is likely a default, built-in python way of doing this (instead of writing a function), but I'm not sure what it is. Would be happy to be corrected!

Edit: It's [ [] for _ in range(10)]

Example :

>>> [ [random.random() for _ in range(2) ] for _ in range(5)]
>>> [[0.7528051908943816, 0.4325669600055032], [0.510983236521753, 0.7789949902294716], [0.09475179523690558, 0.30216475640534635], [0.3996890132468158, 0.6374322093017013], [0.3374204010027543, 0.4514925173253973]]
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  • 19
    I heard that using append very often is inferior to list comprehensions. You could create your list of lists via [ [] for _ in range(10)]. – M.Herzkamp Aug 4 '16 at 11:34
  • 13
    Upvoted because I was getting mad because I had multi-dimentional array with the same data repeated several times and couldn't figure what was happening before finally finding this answer.^^ I don't understand why it's so low here. – Bregalad Dec 30 '17 at 17:43
20

You can .append(element) to the list, e.g.: s1.append(i). What you are currently trying to do is access an element (s1[i]) that does not exist.

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16

There are two "quick" methods:

x = length_of_your_list
a = [None]*x
# or
a = [None for _ in xrange(x)]

It appears that [None]*x is faster:

>>> from timeit import timeit
>>> timeit("[None]*100",number=10000)
0.023542165756225586
>>> timeit("[None for _ in xrange(100)]",number=10000)
0.07616496086120605

But if you are ok with a range (e.g. [0,1,2,3,...,x-1]), then range(x) might be fastest:

>>> timeit("range(100)",number=10000)
0.012513160705566406
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  • 1
    Note that in Python3 you'll have to use list(range(n)) instead, as range() doesn't return a list but is an iterator, and that isn't faster than [None] * n. – Skillmon likes topanswers.xyz Feb 7 at 21:16
12

I'm surprised nobody suggest this simple approach to creating a list of empty lists. This is an old thread, but just adding this for completeness. This will create a list of 10 empty lists

x = [[] for i in range(10)]
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  • 11
    The most important difference between doing the above vs doing x = [[]] * 10 is that in the latter, each element in the list is pointing to the SAME list object. So unless you simply want 10 copies of the same object, use the range based variant as it creates 10 new objects. I found this distinction very important. – Mandeep Sandhu Apr 23 '18 at 18:29
9

The accepted answer has some gotchas. For example:

>>> a = [{}] * 3
>>> a
[{}, {}, {}]
>>> a[0]['hello'] = 5
>>> a
[{'hello': 5}, {'hello': 5}, {'hello': 5}]
>>> 

So each dictionary refers to the same object. Same holds true if you initialize with arrays or objects.

You could do this instead:

>>> b = [{} for i in range(0, 3)]
>>> b
[{}, {}, {}]
>>> b[0]['hello'] = 6
>>> b
[{'hello': 6}, {}, {}]
>>> 
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6

(This was written based on the original version of the question.)

I want to create a empty list (or whatever is the best way) can hold 10 elements.

All lists can hold as many elements as you like, subject only to the limit of available memory. The only "size" of a list that matters is the number of elements currently in it.

but when I run it, the result is []

print display s1 is not valid syntax; based on your description of what you're seeing, I assume you meant display(s1) and then print s1. For that to run, you must have previously defined a global s1 to pass into the function.

Calling display does not modify the list you pass in, as written. Your code says "s1 is a name for whatever thing was passed in to the function; ok, now the first thing we'll do is forget about that thing completely, and let s1 start referring instead to a newly created list. Now we'll modify that list". This has no effect on the value you passed in.

There is no reason to pass in a value here. (There is no real reason to create a function, either, but that's beside the point.) You want to "create" something, so that is the output of your function. No information is required to create the thing you describe, so don't pass any information in. To get information out, return it.

That would give you something like:

def display():
    s1 = list();
    for i in range(0, 9):
        s1[i] = i
    return s1

The next problem you will note is that your list will actually have only 9 elements, because the end point is skipped by the range function. (As side notes, [] works just as well as list(), the semicolon is unnecessary, s1 is a poor name for the variable, and only one parameter is needed for range if you're starting from 0.) So then you end up with

def create_list():
    result = list()
    for i in range(10):
        result[i] = i
    return result

However, this is still missing the mark; range is not some magical keyword that's part of the language the way for and def are, but instead it's a function. And guess what that function returns? That's right - a list of those integers. So the entire function collapses to

def create_list():
    return range(10)

and now you see why we don't need to write a function ourselves at all; range is already the function we're looking for. Although, again, there is no need or reason to "pre-size" the list.

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4

One simple way to create a 2D matrix of size n using nested list comprehensions:

m = [[None for _ in range(n)] for _ in range(n)]
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3

I'm a bit surprised that the easiest way to create an initialised list is not in any of these answers. Just use a generator in the list function:

list(range(9))
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  • 1
    A bit curious as to why anyone comments on this one yet... I'm a python noob and I this one looks like the way to go, but nobody says anything. Maybe the range function could be expensive or something? – AFP_555 Apr 22 '19 at 2:25
  • 3
    This problem is this answer doesn't create an empty list as per question, you will end up with [0, 1, 2, 3, 4, 5, 6, 7 ,8] which is what the range(9) function does. Assuming instantiating a list of Nones is useful rather than filling it with numbers right away – Spcogg the second May 12 '19 at 4:24
  • Why wrap the range(9) in list()? Doesn't range(9) already return a list? – Zyl Aug 27 '19 at 16:21
  • 2
    @Zyl range is not a list, nor a generator. It's a built-in immutable subclass of Sequence. – Nuno André Nov 14 '19 at 2:53
  • 1
    @AFP_555 I think the real question is why it isn't downvoted more, as it doesn't really answer the question and could have bad unintended consequences. – eric Feb 13 at 19:08
1

Here's my code for 2D list in python which would read no. of rows from the input :

empty = []
row = int(input())

for i in range(row):
    temp = list(map(int, input().split()))
    empty.append(temp)

for i in empty:
    for j in i:
        print(j, end=' ')
    print('')
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-1

I came across this SO question while searching for a similar problem. I had to build a 2D array and then replace some elements of each list (in 2D array) with elements from a dict. I then came across this SO question which helped me, maybe this will help other beginners to get around. The key trick was to initialize the 2D array as an numpy array and then using array[i,j] instead of array[i][j].

For reference this is the piece of code where I had to use this :

nd_array = []
for i in range(30):
    nd_array.append(np.zeros(shape = (32,1)))
new_array = []
for i in range(len(lines)):
    new_array.append(nd_array)
new_array = np.asarray(new_array)
for i in range(len(lines)):
    splits = lines[i].split(' ')
    for j in range(len(splits)):
        #print(new_array[i][j])
        new_array[i,j] = final_embeddings[dictionary[str(splits[j])]-1].reshape(32,1)

Now I know we can use list comprehension but for simplicity sake I am using a nested for loop. Hope this helps others who come across this post.

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-3
s1 = []
for i in range(11):
   s1.append(i)

print s1

To create a list, just use these brackets: "[]"

To add something to a list, use list.append()

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-3

Make it more reusable as a function.

def createEmptyList(length,fill=None):
    '''
    return a (empty) list of a given length
    Example:
        print createEmptyList(3,-1)
        >> [-1, -1, -1]
        print createEmptyList(4)
        >> [None, None, None, None]
    '''
    return [fill] * length
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-4

This code generates an array that contains 10 random numbers.

import random
numrand=[]
for i in range(0,10):
   a = random.randint(1,50)
   numrand.append(a)
   print(a,i)
print(numrand)
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