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How can I create a list which contains only zeros? I want to be able to create a zeros list for each int in range(10)

For example, if the int in the range was 4 I will get:

[0,0,0,0]

and for 7:

[0,0,0,0,0,0,0]
  • 3
    For large numeric arrays you should use numpy, which has a zeros function to do this. – Katriel Dec 16 '11 at 0:49
490
#add code here to figure out the number of 0's you need, naming the variable n.
listofzeros = [0] * n

if you prefer to put it in the function, just drop in that code and add return listofzeros

Which would look like this:

def zerolistmaker(n):
    listofzeros = [0] * n
    return listofzeros

sample output:

>>> zerolistmaker(4)
[0, 0, 0, 0]
>>> zerolistmaker(5)
[0, 0, 0, 0, 0]
>>> zerolistmaker(15)
[0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0]
>>> 
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  • I guess this is a compilation of some of the other stuff, but it puts it all together, and as the website says, "We're just here to help" (or something like that). – Tiffany Dec 16 '11 at 1:03
  • 25
    just do return [0] * n, as listofzeros is a filler variable. – Droogans Dec 16 '11 at 4:20
  • Beautiful use of functional programming – user4234032 Sep 4 '17 at 0:54
  • 2
    Watch out if you do this with non-primitive types. [{ }] * 5 will make a list of 5 references to the same dictionary. – Albert Nemec Sep 2 at 23:49
60
$python 2.7.8

from timeit import timeit
import numpy

timeit("list(0 for i in xrange(0, 100000))", number=1000)
> 8.173301935195923

timeit("[0 for i in xrange(0, 100000)]", number=1000)
> 4.881675958633423

timeit("[0] * 100000", number=1000)
> 0.6624710559844971

timeit('list(itertools.repeat(0, 100000))', 'import itertools', number=1000)
> 1.0820629596710205

You should use [0] * n to generate a list with n zeros.

See why [] is faster than list()

There is a gotcha though, both itertools.repeat and [0] * n will create lists whose elements refer to same id. This is not a problem with immutable objects like integers or strings but if you try to create list of mutable objects like a list of lists ([[]] * n) then all the elements will refer to the same object.

a = [[]] * 10
a[0].append(1)
a
> [[1], [1], [1], [1], [1], [1], [1], [1], [1], [1]]

[0] * n will create the list immediately while repeat can be used to create the list lazily when it is first accessed.

If you're dealing with really large amount of data and your problem doesn't need variable length of list or multiple data types within the list it is better to use numpy arrays.

timeit('numpy.zeros(100000, numpy.int)', 'import numpy', number=1000)
> 0.057849884033203125

numpy arrays will also consume less memory.

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  • 1
    Can you explain a bit more why in cases of mutable objects this is a problem? So in integers although they are immutable as the elements refer to the same id won't all the elements be of the same integer? – S. Salman Jul 10 '18 at 17:47
  • 2
    You'd expect that when you create a list of lists that all the lists are different from one another while they're actually references to the same list. This doesn't matter with integers since you cannot change the values of integers (or strings) in Pyhton. When you do operations like a = a + 1 you get a new id for a + 1 instead of changing the original value at id(a). – Seppo Erviälä Jul 11 '18 at 11:44
28

The easiest way to create a list where all values are the same is multiplying a one-element list by n.

>>> [0] * 4
[0, 0, 0, 0]

So for your loop:

for i in range(10):
    print [0] * i
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15
$ python3
>>> from itertools import repeat
>>> list(repeat(0, 7))
[0, 0, 0, 0, 0, 0, 0]
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7
zlists = [[0] * i for i in range(10)]

zlists[0] is a list of 0 zeroes, zlists[1] is a list of 1 zero, zlists[2] is a list of 2 zeroes, etc.

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  • This is a nice idea, but it doesn't work for lists longer than 9 zeroes. Easily remedied (though it'll never work for arbitrary lists), but then you run into a bigger problem, which is that it stores T_N zeroes in memory. It's better to use a factory function, as Ben has done in his accepted answer. – Benjamin Hodgson Sep 21 '12 at 22:21
  • There's another problem with this, which is a slight subtlety due to the way references work: a=zlists[3]; a.append[5]; b=zlists[3]; print b outputs [0, 0, 0, 5]. b is not a list of zeroes, as one might naively expect! – Benjamin Hodgson Sep 21 '12 at 22:24
  • Question was to make a list of lists of zeroes. My answer does that. As for your second "problem" -- you'd have the same problem no matter how you made the list. – kindall Sep 21 '12 at 22:27
  • 2
    def zeroes(n): return [0]*n followed by a=zeroes[3]; a.append[5]; b=zeroes[3]; print b outputs [0, 0, 0]. I was just pointing out to the reader that it doesn't work like a factory. – Benjamin Hodgson Sep 21 '12 at 22:32
5

zeros=[0]*4

you can replace 4 in the above example with whatever number you want.

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5

If you want a function which will return an arbitrary number of zeros in a list, try this:

def make_zeros(number):
    return [0] * number

list = make_zeros(10)

# list now contains: [0, 0, 0, 0, 0, 0, 0, 0, 0, 0]
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2

Here is the xrange way:

list(0 for i in xrange(0,5)) 
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