217

I'm beginning python and I'm trying to use a two-dimensional list, that I initially fill up with the same variable in every place. I came up with this:

def initialize_twodlist(foo):
    twod_list = []
    new = []
    for i in range (0, 10):
        for j in range (0, 10):
            new.append(foo)
        twod_list.append(new)
        new = []

It gives the desired result, but feels like a workaround. Is there an easier/shorter/more elegant way to do this?

21 Answers 21

332

A pattern that often came up in Python was

bar = []
for item in some_iterable:
    bar.append(SOME EXPRESSION)

which helped motivate the introduction of list comprehensions, which convert that snippet to

bar = [SOME EXPRESSION for item in some_iterable]

which is shorter and sometimes clearer. Usually you get in the habit of recognizing these and often replacing loops with comprehensions.

Your code follows this pattern twice

twod_list = []                                       \                      
for i in range (0, 10):                               \
    new = []                  \ can be replaced        } this too
    for j in range (0, 10):    } with a list          /
        new.append(foo)       / comprehension        /
    twod_list.append(new)                           /
  • 170
    +1 for teaching how to fish, instead of giving him the fish. – Esteban Küber Mar 7 '10 at 17:45
  • 27
    i want all the fish i can eat, so thanks – thepandaatemyface Mar 7 '10 at 17:49
  • 22
    By the way, [[foo]*10 for x in xrange(10)] can be used to get rid of one comprehension. The problem is that multiplication does a shallow copy, so new = [foo] * 10 new = [new] * 10 will get you a list containing the same list ten times. – Scott Wolchok Mar 7 '10 at 18:24
  • 4
    Similarly, [foo] * 10 is a list with the same exact foo 10 times, which may or may not be important. – Mike Graham Mar 9 '10 at 20:55
  • 1
    we can use the simplest thing: wtod_list = [[0 for x in xrange(10))] for x in xrange(10)] – indi60 Jun 18 '14 at 7:03
178

You can use a list comprehension:

x = [[foo for i in range(10)] for j in range(10)]
# x is now a 10x10 array of 'foo' (which can depend on i and j if you want)
  • 1
    since the size (10) is same its fine, if not the nested loop have to come first [foo for j in range(range_of_j)] for i in range(range_of_i)] – Dineshkumar Mar 28 '15 at 12:48
  • This answer works fine but I since we iterate i for rows and j for columns, I think it should be better to swap i and j in your syntax for better understanding and change the range to 2 different numbers. – DragonKnight Oct 20 '17 at 21:46
120

This way is faster than the nested list comprehensions

[x[:] for x in [[foo] * 10] * 10]    # for immutable foo!

Here are some python3 timings, for small and large lists

$python3 -m timeit '[x[:] for x in [[1] * 10] * 10]'
1000000 loops, best of 3: 1.55 usec per loop

$ python3 -m timeit '[[1 for i in range(10)] for j in range(10)]'
100000 loops, best of 3: 6.44 usec per loop

$ python3 -m timeit '[x[:] for x in [[1] * 1000] * 1000]'
100 loops, best of 3: 5.5 msec per loop

$ python3 -m timeit '[[1 for i in range(1000)] for j in range(1000)]'
10 loops, best of 3: 27 msec per loop

Explanation:

[[foo]*10]*10 creates a list of the same object repeated 10 times. You can't just use this, because modifying one element will modify that same element in each row!

x[:] is equivalent to list(X) but is a bit more efficient since it avoids the name lookup. Either way, it creates a shallow copy of each row, so now all the elements are independent.

All the elements are the same foo object though, so if foo is mutable, you can't use this scheme., you'd have to use

import copy
[[copy.deepcopy(foo) for x in range(10)] for y in range(10)]

or assuming a class (or function) Foo that returns foos

[[Foo() for x in range(10)] for y in range(10)]
  • 4
    @Mike, did you miss the part in bold? if foo is mutable, none of the other answers here work (unless you are not mutating foo at all) – John La Rooy Feb 18 '11 at 22:48
  • 1
    You cannot correctly copy arbitrary objects using copy.deepcopy. You need a plan specific to your data if you have an arbitrary mutable object. – Mike Graham Feb 22 '11 at 17:22
  • 1
    If you need speed that badly in a loop, it may be time to use Cython, weave, or similar... – james.haggerty Oct 21 '12 at 7:10
  • 1
    @JohnLaRooy i think you interchanged x and y. Shouldn't it be [[copy.deepcopy(foo) for y in range(10)] for x in range(10)] – user3085931 Apr 9 '16 at 12:17
  • 1
    @Nils [foo]*10 doesn't create 10 different objects - but it's easy to overlook the difference in the case where foo is immutable, like an int or str. – John La Rooy May 6 '18 at 23:09
63

Don't use [[v]*n]*n, it is a trap!

>>> a = [[0]*3]*3
>>> a
[[0, 0, 0], [0, 0, 0], [0, 0, 0]]
>>> a[0][0]=1
>>> a
[[1, 0, 0], [1, 0, 0], [1, 0, 0]]

but t = [ [0]*3 for i in range(3)] is great

  • 9
    yes, I fell into this trap, too. It's because * is copying the address of the object (list). – chinuy Jul 19 '17 at 15:58
  • this is a real trap. i west my 2 hour – Shadiqur yesterday
48

To initialize a two-dimensional array in Python:

a = [[0 for x in range(columns)] for y in range(rows)]
  • 4
    To initialize all values to 0, just use a = [[0 for x in range(columns)] for y in range(rows)]. – ZX9 Sep 21 '16 at 15:33
24
[[foo for x in xrange(10)] for y in xrange(10)]
  • 1
    xrange() has been removed in python3.5 – MiaeKim Jan 6 '16 at 16:27
  • why this doesn't work: [0 * col] * row. When I modify some element it replicates at other places. But I don't understand why? – code muncher Apr 29 '16 at 19:50
  • Because that does exactly the same thing as the code in the question. – Ignacio Vazquez-Abrams Apr 29 '16 at 19:54
  • 1
    @codemuncher The reason that [[0] * col] * row doesn't do what you want is because when you initialize a 2d list that way, Python will not create distinct copies of each row. Instead it will init the outer list with pointers to the same copy of [0]*col. Any edit you make to one of the rows will then be reflected in the remaining rows since they are all actually pointing to the same data in memory. – Addie May 29 '17 at 6:12
20

Usually when you want multidimensional arrays you don't want a list of lists, but rather a numpy array or possibly a dict.

For example, with numpy you would do something like

import numpy
a = numpy.empty((10, 10))
a.fill(foo)
  • 2
    Although numpy is great, I think it might be a bit of overkill for a beginner. – Esteban Küber Mar 7 '10 at 17:42
  • 3
    numpy provides a multidimensional array type. Building a good multidimensional array out of lists is possible but less useful and harder for a beginner than using numpy. Nested lists are great for some applications, but aren't usually what someone wanting a 2d array would be best off with. – Mike Graham Mar 7 '10 at 17:46
  • 1
    after a few years of occasionally doing serious python apps the quirks of standard python arrays seem to warrant just going ahead with numpy. +1 – javadba Aug 24 '17 at 18:23
12

You can do just this:

[[element] * numcols] * numrows

For example:

>>> [['a'] *3] * 2
[['a', 'a', 'a'], ['a', 'a', 'a']]

But this has a undesired side effect:

>>> b = [['a']*3]*3
>>> b
[['a', 'a', 'a'], ['a', 'a', 'a'], ['a', 'a', 'a']]
>>> b[1][1]
'a'
>>> b[1][1] = 'b'
>>> b
[['a', 'b', 'a'], ['a', 'b', 'a'], ['a', 'b', 'a']]
  • 7
    In my experience, this "undesirable" effect is often a source of some very bad logical errors. In my opinion, this approach should be avoided, instead @Vipul's answer is much better. – Alan Turing Jun 20 '15 at 19:28
  • this approach works good , why in comments some people refer it is as bad ? – Bravo Oct 25 '17 at 4:12
  • Because of the undersired side effect, you cannot really treat it as a matrix. If you dont need to alter the contents then it'll be all right. – hithwen Nov 22 '17 at 0:59
8

If it's a sparsely-populated array, you might be better off using a dictionary keyed with a tuple:

dict = {}
key = (a,b)
dict[key] = value
...
4
twod_list = [[foo for _ in range(m)] for _ in range(n)]

for n is number of rows, and m is the number of column, and foo is the value.

3

use the simplest think to create this.

wtod_list = []

and add the size:

wtod_list = [[0 for x in xrange(10))] for x in xrange(10)]

or if we want to declare the size firstly. we only use:

   wtod_list = [[0 for x in xrange(10))] for x in xrange(10)]
3

Incorrect Approach: [[None*m]*n]

>>> m, n = map(int, raw_input().split())
5 5
>>> x[0][0] = 34
>>> x
[[34, None, None, None, None], [34, None, None, None, None], [34, None, None, None, None], [34, None, None, None, None], [34, None, None, None, None]]
>>> id(x[0][0])
140416461589776
>>> id(x[3][0])
140416461589776

With this approach, python does not allow creating different address space for the outer columns and will lead to various misbehaviour than your expectation.

Correct Approach but with exception:

y = [[0 for i in range(m)] for j in range(n)]
>>> id(y[0][0]) == id(y[1][0])
False

It is good approach but there is exception if you set default value to None

>>> r = [[None for i in range(5)] for j in range(5)]
>>> r
[[None, None, None, None, None], [None, None, None, None, None], [None, None, None, None, None], [None, None, None, None, None], [None, None, None, None, None]]
>>> id(r[0][0]) == id(r[2][0])
True

So set your default value properly using this approach.

Absolute correct:

Follow the mike's reply of double loop.

3
t = [ [0]*10 for i in [0]*10]

for each element a new [0]*10 will be created ..

2
Matrix={}
for i in range(0,3):
  for j in range(0,3):
    Matrix[i,j] = raw_input("Enter the matrix:")
  • 1
    While this code may answer the question, providing additional context regarding why and/or how this code answers the question improves its long-term value. – Ajean Mar 8 '16 at 17:15
1

As @Arnab and @Mike pointed out, an array is not a list. Few differences are 1) arrays are fixed size during initialization 2) arrays normally support lesser operations than a list.

Maybe an overkill in most cases, but here is a basic 2d array implementation that leverages hardware array implementation using python ctypes(c libraries)

import ctypes
class Array:
    def __init__(self,size,foo): #foo is the initial value
        self._size = size
        ArrayType = ctypes.py_object * size
        self._array = ArrayType()
        for i in range(size):
            self._array[i] = foo
    def __getitem__(self,index):
        return self._array[index]
    def __setitem__(self,index,value):
        self._array[index] = value
    def __len__(self):
        return self._size

class TwoDArray:
    def __init__(self,columns,rows,foo):
        self._2dArray = Array(rows,foo)
        for i in range(rows):
            self._2dArray[i] = Array(columns,foo)

    def numRows(self):
        return len(self._2dArray)
    def numCols(self):
        return len((self._2dArray)[0])
    def __getitem__(self,indexTuple):
        row = indexTuple[0]
        col = indexTuple[1]
        assert row >= 0 and row < self.numRows() \
               and col >=0 and col < self.numCols(),\
               "Array script out of range"
        return ((self._2dArray)[row])[col]

if(__name__ == "__main__"):
    twodArray = TwoDArray(4,5,5)#sample input
    print(twodArray[2,3])
1

You can try this [[0]*10]*10. This will return the 2d array of 10 rows and 10 columns with value 0 for each cell.

0

This is the best I've found for teaching new programmers, and without using additional libraries. I'd like something better though.

def initialize_twodlist(value):
    list=[]
    for row in range(10):
        list.append([value]*10)
    return list
0

Here is an easier way :

import numpy as np
twoD = np.array([[]*m]*n)

For initializing all cells with any 'x' value use :

twoD = np.array([[x]*m]*n
0

Often I use this approach for initializing a 2-dimensional array

n=[[int(x) for x in input().split()] for i in range(int(input())]

0

The general pattern to add dimensions could be drawn from this series:

x = 0
mat1 = []
for i in range(3):
    mat1.append(x)
    x+=1
print(mat1)


x=0
mat2 = []
for i in range(3):
    tmp = []
    for j in range(4):
        tmp.append(x)
        x+=1
    mat2.append(tmp)

print(mat2)


x=0
mat3 = []
for i in range(3):
    tmp = []
    for j in range(4):
        tmp2 = []
        for k in range(5):
            tmp2.append(x)
            x+=1
        tmp.append(tmp2)
    mat3.append(tmp)

print(mat3)
  • Welcome to SO. This question already has a massively up-voted accepted answer. At first sight, this post doesn't actually answer the question. See stackoverflow.com/help/how-to-answer for guidance. – Nick Jul 16 '18 at 16:53
-3
from random import randint
l = []

for i in range(10):
    k=[]
    for j in range(10):
        a= randint(1,100)
        k.append(a)

    l.append(k)




print(l)
print(max(l[2]))

b = []
for i in range(10):
    a = l[i][5]
    b.append(a)

print(min(b))

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