280

Right now I am using a list, and was expecting something like:

verts = list (1000)

Should I use array instead?

7
  • Initialize a collection with a predefined number of elements.
    – Joan Venge
    Feb 6, 2009 at 19:15
  • Why? Do you have to set elements at random positions? Feb 6, 2009 at 19:34
  • 10
    Why? I have an collection of items where order is important. Do you guys know the answer to how it's done. Steve's reply seems like the only way.
    – Joan Venge
    Feb 6, 2009 at 21:04
  • 42
    I am surprised (and feeling a bit sorry for @JoanVenge) by the number comments which are straying all over the place. In my opinion a standard answer should first include how to accomplish a task (howsoever ridiculous it may be) and then admonish/advice the user for the question. It just seems pointless. Questioning the validity of the question can be questioned. Apr 12, 2014 at 0:52
  • 15
    @ShashankSawant: Welcome to SO.
    – Joan Venge
    Apr 12, 2014 at 16:05

9 Answers 9

397

The first thing that comes to mind for me is:

verts = [None]*1000

But do you really need to preinitialize it?

20
  • 22
    Yes, that's exactly the point. "Premature optimization is the root of all evil" just means that you should write code without caring about performance - at first. If you find that the code is running slow later on, then go back and make optimizations like this one.
    – David Z
    Feb 6, 2009 at 19:15
  • 32
    No, premature optimization is when you try to optimize code that you aren't certain needs to be optimized. You should NOT always write the fastest code possible -- other concerns like business goals, maintainance cost, engineering time to write it, are often more important.
    – user26294
    Feb 6, 2009 at 21:07
  • 104
    Note that there are other legitimate cases than optimizations for the wish to pre-allocate an array. It could be the code that uses it doesn't add elements, just replaces existing ones, so it's more like an array than a list. Sep 10, 2009 at 8:08
  • 61
    This way of initializing a Python array is evil: a=[[]]*2; a[0].append('foo'); now inspect a[1], and you will be shocked. In contrast a=[[] for k in range(2)] works fine.
    – Joachim W
    Aug 12, 2013 at 21:40
  • 17
    Check your assumptions. E.g. I'm currently analyzing a network error rate by parsing a logfile and putting errors in an array of bins, currently 4 bins / hour and 24 hours / day. Hours in a day doesn't change, and if I change bins/hour I'll stop and restart the program, so I always want (currently) 4 * 24 = 96 bins. It seems natural to me (with a C / C++ / C# / etc. background) to start by initializing each bin to 0. How is this an optimization, whether premature or not? Dec 28, 2014 at 20:19
84

Not quite sure why everyone is giving you a hard time for wanting to do this - there are several scenarios where you'd want a fixed size initialised list. And you've correctly deduced that arrays are sensible in these cases.

import array
verts=array.array('i',(0,)*1000)

For the non-pythonistas, the (0,)*1000 term is creating a tuple containing 1000 zeros. The comma forces python to recognise (0) as a tuple, otherwise it would be evaluated as 0.

I've used a tuple instead of a list because they are generally have lower overhead.

7
  • 7
    Some people take "premature" optimization literally I guess.
    – Joan Venge
    Dec 7, 2009 at 18:28
  • 7
    Thanks! This solution is exactly what I was looking for. When profiling, the list initialization was the bottleneck in my code, and this made it 2 times faster.
    – Frederik
    Nov 28, 2011 at 8:56
  • 81
    Sadly I've yet to find an answer to a Python question on SO which doesn't contain some smug "why would you want to do that?"-type dorm-room arrogance as a standard response. Yay "community". Apr 3, 2013 at 16:15
  • 2
    @mikerodent Joan is a male name in a number of countries around the world, including France, Spain and the Netherlands.
    – Chris
    Jul 14, 2015 at 19:31
  • @Chris certainly true for Spain, and for all I know N'lands. Not sure about France, having lived there for many years. If I may modify my remark slightly, this particularly annoying tone of aggression may be due to some (anglophone) "dorm-room jocks" assuming Joan to be female. Jul 14, 2015 at 19:46
68

One obvious and probably not efficient way is

verts = [0 for x in range(1000)]

Note that this can be extended to 2-dimension easily. For example, to get a 10x100 "array" you can do

verts = [[0 for x in range(100)] for y in range(10)]
38

Wanting to initalize an array of fixed size is a perfectly acceptable thing to do in any programming language; it isn't like the programmer wants to put a break statement in a while(true) loop. Believe me, especially if the elements are just going to be overwritten and not merely added/subtracted, like is the case of many dynamic programming algorithms, you don't want to mess around with append statements and checking if the element hasn't been initialized yet on the fly (that's a lot of code gents).

object = [0 for x in range(1000)]

This will work for what the programmer is trying to achieve.

1
  • 1
    +1. I was afraid if I am doing right thing initialising array with pre-defined size. Your answer makes me calm.
    – smajli
    Feb 28, 2019 at 9:14
28

@Steve already gave a good answer to your question:

verts = [None] * 1000

Warning: As @Joachim Wuttke pointed out, the list must be initialized with an immutable element. [[]] * 1000 does not work as expected because you will get a list of 1000 identical lists (similar to a list of 1000 points to the same list in C). Immutable objects like int, str or tuple will do fine.

Alternatives

Resizing lists is slow. The following results are not very surprising:

>>> N = 10**6

>>> %timeit a = [None] * N
100 loops, best of 3: 7.41 ms per loop

>>> %timeit a = [None for x in xrange(N)]
10 loops, best of 3: 30 ms per loop

>>> %timeit a = [None for x in range(N)]
10 loops, best of 3: 67.7 ms per loop

>>> a = []
>>> %timeit for x in xrange(N): a.append(None)
10 loops, best of 3: 85.6 ms per loop

But resizing is not very slow if you don't have very large lists. Instead of initializing the list with a single element (e.g. None) and a fixed length to avoid list resizing, you should consider using list comprehensions and directly fill the list with correct values. For example:

>>> %timeit a = [x**2 for x in xrange(N)]
10 loops, best of 3: 109 ms per loop

>>> def fill_list1():
    """Not too bad, but complicated code"""
    a = [None] * N
    for x in xrange(N):
        a[x] = x**2
>>> %timeit fill_list1()
10 loops, best of 3: 126 ms per loop

>>> def fill_list2():
    """This is slow, use only for small lists"""
    a = []
    for x in xrange(N):
        a.append(x**2)
>>> %timeit fill_list2()
10 loops, best of 3: 177 ms per loop

Comparison to numpy

For huge data set numpy or other optimized libraries are much faster:

from numpy import ndarray, zeros
%timeit empty((N,))
1000000 loops, best of 3: 788 ns per loop

%timeit zeros((N,))
100 loops, best of 3: 3.56 ms per loop
4

You could do this:

verts = list(xrange(1000))

That would give you a list of 1000 elements in size and which happens to be initialised with values from 0-999. As list does a __len__ first to size the new list it should be fairly efficient.

1
  • 5
    before python 3.0 it would be range(1000); in python 3.0 it would be list(range(1000))
    – user3850
    Feb 8, 2009 at 18:07
0

You should consider using a dict type instead of pre-initialized list. The cost of a dictionary look-up is small and comparable to the cost of accessing arbitrary list element.

And when using a mapping you can write:

aDict = {}
aDict[100] = fetchElement()
putElement(fetchElement(), fetchPosition(), aDict)

And the putElement function can store item at any given position. And if you need to check if your collection contains element at given index it is more Pythonic to write:

if anIndex in aDict:
    print "cool!"

Than:

if not myList[anIndex] is None:
    print "cool!"

Since the latter assumes that no real element in your collection can be None. And if that happens - your code misbehaves.

And if you desperately need performance and that's why you try to pre-initialize your variables, and write the fastest code possible - change your language. The fastest code can't be written in Python. You should try C instead and implement wrappers to call your pre-initialized and pre-compiled code from Python.

-2

Without knowing more about the problem domain, it's hard to answer your question. Unless you are certain that you need to do something more, the pythonic way to initialize a list is:

verts = []

Are you actually seeing a performance problem? If so, what is the performance bottleneck? Don't try to solve a problem that you don't have. It's likely that performance cost to dynamically fill an array to 1000 elements is completely irrelevant to the program that you're really trying to write.

The array class is useful if the things in your list are always going to be a specific primitive fixed-length type (e.g. char, int, float). But, it doesn't require pre-initialization either.

3
  • 7
    You don't see the point. I just want to create an list/array with a predefined number of elements. Commenting on why and how I should need is silly. I know what I am doing. Thanks.
    – Joan Venge
    Feb 6, 2009 at 21:18
  • 3
    When I said, I know what I am doing, I meant programming wise, not python. If I knew python, I wouldn't ask the question, now would I?
    – Joan Venge
    Feb 9, 2009 at 17:25
  • 2
    Can you edit the question and explain a bit more of the context? From the question, it's not clear what the right answer is, and it's also not clear that you know what you're doing.
    – user26294
    Feb 10, 2009 at 19:56
-4

This:

 lst = [8 for i in range(9)]

creates a list, elements are initialized 8

but this:

lst = [0] * 7

would create 7 lists which have one element

3
  • 10
    [0] * 7 evaluates to [0, 0, 0, 0, 0, 0, 0], which is a list containing 7 elements. Or are you describing behavior of some very old version of Python?
    – FooF
    Jul 20, 2016 at 3:17
  • What he said is the list contains 7 elements, but all of the 7 elements point to a same memory. And a modification to any of those 7 elements will lead to others change correspondingly.
    – York
    Mar 27, 2017 at 12:19
  • 2
    Um, not if the elements are integers, right? I just tried mylist = [0] * 4, then after mylist[0] = 12, mylist returns [12, 0, 0, 0] Jan 12, 2018 at 14:37

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