190

I'm trying to make a list with numbers 1-1000 in it. Obviously this would be annoying to write/read, so I'm attempting to make a list with a range in it. In Python 2 it seems that:

some_list = range(1,1000)

would have worked, but in Python 3 the range is similar to the xrange of Python 2?

Can anyone provide some insight into this?

  • 1
    also, some_list[i] == i+1, so you probably don't really need a list anyway. – njzk2 Jun 6 '14 at 15:45
  • 1
    @RikPoggi. for example, one might need to supply a list for a plotting function. Sometimes a range will suffice, but a range cannot be concatenated (is immutable), so if you need to add a default starting value to all lists being plotted, that on needs to be turned into a list also. – SherylHohman Apr 14 '17 at 13:40
239

You can just construct a list from the range object:

my_list = list(range(1, 1001))

This is how you do it with generators in python2.x as well. Typically speaking, you probably don't need a list though since you can come by the value of my_list[i] more efficiently (i + 1), and if you just need to iterate over it, you can just fall back on range.

Also note that on python2.x, xrange is still indexable1. This means that range on python3.x also has the same property2

1print xrange(30)[12] works for python2.x

2The analogous statement to 1 in python3.x is print(range(30)[12]) and that works also.

| improve this answer | |
  • 4
    This is definitely the way to go, but a nitpick: this isn't really a "cast" – jterrace Jul 14 '12 at 1:03
  • @jterrace changed "cast" to "convert". You're right about it not being a cast... I don't really know what to call it exactly. – mgilson Jul 14 '12 at 1:21
  • 2
    I would say "construct" or "build" (or possibly "materialise")- as you're not "converting" (as such) a generator to a list, you're creating a new list object from a data source which happens to be a generator... (but s'pose just splitting hairs and not 100% sure what I favour anyway) – Jon Clements Jul 14 '12 at 6:10
  • 2
    My +1 for "construct" as it is consistent with other OO languages. The list(arg) is understood in other languages as calling a constructor of the list class. Actually, it is also the Python case. The debates whether the object is filled during the construction (as in the C++ case) or only during the first automatically called method (as in the Python __init__() method) cannot change the basic abstract idea. My view is that the list constructor takes the iterator and fills the list with the returned values. – pepr Jul 14 '12 at 15:51
  • 2
    Why does it give an error in jupyter notebook and working fine in shell? Error: 'range' object is not callable – subtleseeker Sep 29 '18 at 15:01
34

In Pythons <= 3.4 you can, as others suggested, use list(range(10)) in order to make a list out of a range (In general, any iterable).

Another alternative, introduced in Python 3.5 with its unpacking generalizations, is by using * in a list literal []:

>>> r = range(10)
>>> l = [*r]
>>> print(l)
[0, 1, 2, 3, 4, 5, 6, 7, 8, 9]

Though this is equivalent to list(r), it's literal syntax and the fact that no function call is involved does let it execute faster. It's also less characters, if you need to code golf :-)

| improve this answer | |
  • 4
    To be clear, you can still one-line it: [*range(10)] works just fine for when you don't need the range for any purpose but initializing the list. Side-note: My favorite(okay, not really) part of the unpacking generalizations is that empty sets now have a literal syntax, {*()}, or as I call it, the one-eyed monkey operator. ;-) – ShadowRanger Nov 3 '17 at 0:08
  • @ShadowRanger that's how I originally thought about writing it. I decided to be a bit more verbose in order to not confuse new Python users :-) – Dimitris Fasarakis Hilliard Nov 3 '17 at 0:12
26

in Python 3.x, the range() function got its own type. so in this case you must use iterator

list(range(1000))

| improve this answer | |
  • 11
    "in this case you must use iterator"? What the heck is that supposed to mean? – user2357112 supports Monica Nov 2 '17 at 23:56
  • 2
    I am using python 3.7 & tried x=list(range(1000)) but got the error TypeError: 'list' object is not callable – Earthshaker Jul 15 '19 at 16:23
  • @Earthshaker You must have a typo, like list(range(1000))() – wjandrea Jul 5 at 1:12
18

The reason why Python3 lacks a function for directly getting a ranged list is because the original Python3 designer was quite novice in Python2. He only considered the use of range() function in a for loop, thus, the list should never need to be expanded. In fact, very often we do need to use the range() function to produce a list and pass into a function.

Therefore, in this case, Python3 is less convenient as compared to Python2 because:

  • In Python2, we have xrange() and range();
  • In Python3, we have range() and list(range())

Nonetheless, you can still use list expansion in this way:

[*range(N)]
| improve this answer | |
  • 6
    The whole point is to make it less convenient to make a list, because that's usually the wrong thing to do. For 99 out of 100 use cases, making an actual list is inefficient and pointless, since range itself acts like an immutable sequence in almost every way, sometimes more efficiently to boot (e.g. containment tests for ints are O(1), vs. O(n) for lists). In Python 2, people tended to use range by default, even though xrange was almost always the better option; in Python 3, you can to explicitly opt in to the list, not get it by accident by using the wrong name. – ShadowRanger Jun 19 '19 at 10:50
  • 9
    The comment about the Python 3 designer and his expertise in Python 2 is quite bold and impertinent. – kazarey Aug 29 '19 at 0:41
  • @kazarey But is it true? There are a lot of things in python that are questionable along these lines – javadba Feb 26 at 0:29
  • 1
    Would upvote, especially for the unpacking-shorthand to construct the list, but I agree with @kazarey. The comment about the designer is both unfounded (or at least, unbacked by references) and unnecessary. – Nubarke Apr 8 at 15:14
15

You really shouldn't need to use the numbers 1-1000 in a list. But if for some reason you really do need these numbers, then you could do:

[i for i in range(1, 1001)]

List Comprehension in a nutshell:

The above list comprehension translates to:

nums = []
for i in range(1, 1001):
    nums.append(i)

This is just the list comprehension syntax, though from 2.x. I know that this will work in python 3, but am not sure if there is an upgraded syntax as well

Range starts inclusive of the first parameter; but ends Up To, Not Including the second Parameter (when supplied 2 parameters; if the first parameter is left off, it'll start at '0')

range(start, end+1)
[start, start+1, .., end]
| improve this answer | |
  • 20
    Why comprehension? Just: list(range(1000)) – Rik Poggi Jul 14 '12 at 0:48
  • Thanks! Would you mind explaining why it's i for i in... instead of simply for i in? – Boathouse Jul 14 '12 at 0:50
  • I haven't worked with python3. So I'm not fully certain about how it works. I know comprehensions will work, but wasn't 100% on the casting. But if casting works, then you're right and your way is more pythonic. – inspectorG4dget Jul 14 '12 at 0:51
  • 1
    @inspectorG4dget: It's not "casting", it's calling the list() constructor with an iterable. The list() constructor knows how to create a new list when given any iterable object. – Greg Hewgill Jul 14 '12 at 0:53
  • 4
    @inspectorG4dget: list(range(1000)) will work in python3 just like list(xrange(1000)) in python2 – Rik Poggi Jul 14 '12 at 0:55
4

Actually, if you want 1-1000 (inclusive), use the range(...) function with parameters 1 and 1001: range(1, 1001), because the range(start, end) function goes from start to (end-1), inclusive.

| improve this answer | |
0

Use Range in Python 3.

Here is a example function that return in between numbers from two numbers

def get_between_numbers(a, b):
    """
    This function will return in between numbers from two numbers.
    :param a:
    :param b:
    :return:
    """
    x = []
    if b < a:
        x.extend(range(b, a))
        x.append(a)
    else:
        x.extend(range(a, b))
        x.append(b)

    return x

Result

print(get_between_numbers(5, 9))
print(get_between_numbers(9, 5))

[5, 6, 7, 8, 9]  
[5, 6, 7, 8, 9]
| improve this answer | |
  • This seems to be answering a different question...? – wjandrea Jul 5 at 1:14
-1

In fact, this is a retro-gradation of Python3 as compared to Python2. Certainly, Python2 which uses range() and xrange() is more convenient than Python3 which uses list(range()) and range() respectively. The reason is because the original designer of Python3 is not very experienced, they only considered the use of the range function by many beginners to iterate over a large number of elements where it is both memory and CPU inefficient; but they neglected the use of the range function to produce a number list. Now, it is too late for them to change back already.

If I was to be the designer of Python3, I will:

  1. use irange to return a sequence iterator
  2. use lrange to return a sequence list
  3. use range to return either a sequence iterator (if the number of elements is large, e.g., range(9999999) or a sequence list (if the number of elements is small, e.g., range(10))

That should be optimal.

| improve this answer | |
  • How does this answer the question? – wjandrea Jul 5 at 1:15
  • Yup, it answers the question by requesting Python3 developers to change and improve Python3. But it is unlikely that they will change as they are not that elegant. – xuancong84 Jul 6 at 2:09

Not the answer you're looking for? Browse other questions tagged or ask your own question.