51

The documentation basically says that range must behave exactly as this implementation (for positive step):

def range(start, stop, step):
  x = start
  while True:
    if x >= stop: return
    yield x
    x += step

It also says that its arguments must be integers. Why is that? Isn't that definition also perfectly valid if step is a float?

In my case, I am esp. needing a range function which accepts a float type as its step argument. Is there any in Python or do I need to implement my own?


More specific: How would I translate this C code directly to Python in a nice way (i.e. not just doing it via a while-loop manually):

for(float x = 0; x < 10; x += 0.5f) { /* ... */ }
5
  • You can't have return and yield keywords in that loop, use break. Commented Nov 15, 2010 at 23:12
  • Looks like you can! I didn't think that was possible.. I'm sure errors have been raised when I tried something similar Commented Nov 15, 2010 at 23:23
  • Take the code example you posted, rename it to float_range - done. Commented Nov 15, 2010 at 23:27
  • 4
    @Tim: return becomes raise StopIteration; return <expression> gets SyntaxError: 'return' with argument inside generator -- even for return None. Commented Nov 15, 2010 at 23:28
  • 1
    Actually, range() returns a list. What the OP describes is actually xrange(), which returns an element at a time.
    – BobC
    Commented Mar 15, 2013 at 15:49

8 Answers 8

53

You could use numpy.arange.

EDIT: The docs prefer numpy.linspace. Thanks @Droogans for noticing =)

3
  • 3
    The first paragraph states: When using a non-integer step, such as 0.1, the results will often not be consistent. It is better to use linspace for these cases.
    – yurisich
    Commented Oct 15, 2011 at 1:42
  • 2
    Note that linspace has different interface. Commented Jul 11, 2012 at 16:25
  • Or even without numpy.arange. I did a xfrange function without the float precision problems. Check it out ;) stackoverflow.com/questions/477486/… Commented Dec 12, 2013 at 17:07
36

One explanation might be floating point rounding issues. For example, if you could call

range(0, 0.4, 0.1)

you might expect an output of

[0, 0.1, 0.2, 0.3]

but you in fact get something like

[0, 0.1, 0.2000000001, 0.3000000001]

due to rounding issues. And since range is often used to generate indices of some sort, it's integers only.

Still, if you want a range generator for floats, you can just roll your own.

def xfrange(start, stop, step):
    i = 0
    while start + i * step < stop:
        yield start + i * step
        i += 1
7
  • Yes of course (it's just natural that it behaves that way). That is always the case with floats. So of course it would totally be legitim that if range would support floats, it would behave that way. So I don't really get the point why it shouldn't.
    – Albert
    Commented Nov 15, 2010 at 23:20
  • 1
    @Albert: there's usually not much point wondering why decisions like this were made; they just were. In this case the limited use cases would be outwe4ighed by thepotential for nasty bugs imho.
    – Katriel
    Commented Nov 15, 2010 at 23:30
  • 2
    You're accumulating rounding errors. Please use this instead: ` i = 0; r = start while r < stop: i += 1; r = start + i * step; yield r` Commented Apr 11, 2016 at 11:50
  • 1
    @josch I apparently missed Cees' comment. And you're absolutely right of course, my version would have accumulated rounding errors like crazy. I'm a little disturbed revisiting it, in fact, because it's so obviously the wrong thing to do! But it's now - finally - fixed. Thank you for prodding me about it.
    – Zarkonnen
    Commented Aug 23, 2016 at 13:07
  • 1
    It is broken for negative step, fix your while condition like so: while (start + i * step) * (-1 if step < 0 else 1) < stop:
    – user443854
    Commented Jan 24, 2019 at 19:43
13

In order to be able to use decimal numbers in a range expression a cool way for doing it is the following: [x * 0.1 for x in range(0, 10)]

4
  • 3
    If your "range" has a lot of numbers and your "step" of 0.1 is smaller, say .00000001, then this won't work and the script will just hang on most computers. We will need something that simulates what xrange does.ie. we need an iterable/generator, and not list comprehension.fxrange range above works better in this case.
    – ekta
    Commented Aug 26, 2014 at 7:14
  • 1
    Very simple solution for list comprehension, thanks!
    – avtomaton
    Commented Jul 16, 2015 at 18:34
  • 1
    @ekta Use () instead of [] to turn that into a generator. Commented Apr 11, 2016 at 11:53
  • I only needed something simple that I expected from the native range -- I'm happy with this solution Commented Jan 6, 2017 at 10:13
9

The problem with floating point is that you may not get the same number of items as you expected, due to inaccuracy. This can be a real problem if you are playing with polynomials where the exact number of items is quite important.

What you really want is an arithmetic progression; the following code will work quite happily for int, float and complex ... and strings, and lists ...

def arithmetic_progression(start, step, length):
    for i in xrange(length):
        yield start + i * step

Note that this code stands a better chance of your last value being within a bull's roar of the expected value than any alternative which maintains a running total.

>>> 10000 * 0.0001, sum(0.0001 for i in xrange(10000))
(1.0, 0.9999999999999062)
>>> 10000 * (1/3.), sum(1/3. for i in xrange(10000))
(3333.333333333333, 3333.3333333337314)

Correction: here's a competetive running-total gadget:

def kahan_range(start, stop, step):
    assert step > 0.0
    total = start
    compo = 0.0
    while total < stop:
        yield total
        y = step - compo
        temp = total + y
        compo = (temp - total) - y
        total = temp

>>> list(kahan_range(0, 1, 0.0001))[-1]
0.9999
>>> list(kahan_range(0, 3333.3334, 1/3.))[-1]
3333.333333333333
>>>
1
  • 1
    This is a wonderful answer. Why did it not get more upvotes than the answers that accumulate imprecision or need additional libraries?
    – josch
    Commented Aug 19, 2016 at 8:58
5

When you add floating point numbers together, there's often a little bit of error. Would a range(0.0, 2.2, 1.1) return [0.0, 1.1] or [0.0, 1.1, 2.199999999]? There's no way to be certain without rigorous analysis.

The code you posted is an OK work-around if you really need this. Just be aware of the possible shortcomings.

5
  • 1
    Yes, there is a way to be certain. Your step size of 1.1 is exactly 0x1.199999999999ap+0 when represented as a double floating point number in your memory. The code that OP posted is not a perfect workaround because repeated addition of imprecise values lets the error accumulate. It's a better idea to keep track of the loop number during iteration and multiply the step size times the loop number as other answers already have shown.
    – josch
    Commented Aug 19, 2016 at 8:53
  • @josch I meant in the general case, not those numbers specifically. Commented Aug 19, 2016 at 13:18
  • Then our definitions of "certain" differ. Even with floating point numbers, a computer will not give you an "uncertain" or "random" result. The result will always be deterministic. No matter the input, given any finite floating point numbers you will always be able to say with certainty what their result is after adding them X time with a given precision.
    – josch
    Commented Aug 19, 2016 at 14:24
  • @josch I've made a couple of edits based on your feedback, thanks. Commented Aug 19, 2016 at 15:14
  • That makes sense now. Thanks!
    – josch
    Commented Aug 20, 2016 at 5:43
3

Here is a special case that might be good enough:

 [ (1.0/divStep)*x for x in range(start*divStep, stop*divStep)]

In your case this would be:

#for(float x = 0; x < 10; x += 0.5f) { /* ... */ } ==>
start = 0
stop  = 10
divstep = 1/.5 = 2 #This needs to be int, thats why I said 'special case'

and so:

>>> [ .5*x for x in range(0*2, 10*2)]
[0.0, 0.5, 1.0, 1.5, 2.0, 2.5, 3.0, 3.5, 4.0, 4.5, 5.0, 5.5, 6.0, 6.5, 7.0, 7.5, 8.0, 8.5, 9.0, 9.5]
2

This is what I would use:

numbers = [float(x)/10 for x in range(10)]

rather than:

numbers = [x*0.1 for x in range(10)]
that would return :
[0.0, 0.1, 0.2, 0.30000000000000004, 0.4, 0.5, 0.6000000000000001, 0.7000000000000001, 0.8, 0.9]

hope it helps.

2
  • This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post - you can always comment on your own posts, and once you have sufficient reputation you will be able to comment on any post.
    – Rais Alam
    Commented Jun 17, 2014 at 4:24
  • @RaisAlam Please notice that if he used 0.5 instead of 0.1, the unexpected behavior would not appear. Commented Apr 11, 2016 at 12:00
-2

Probably because you can't have part of an iterable. Also, floats are imprecise.

1
  • Floats are very precise. What they are not good at is representing certain values that have a finite representation in base 10. For example 0.1 in base 10 will become 0x1.999999999999ap-4 (using the exact hex float representation) in your memory which is not exactly 0.1 in decimal. With that argument you can also say that decimal numbers are imprecise because there are certain values that they have no finite representation for...
    – josch
    Commented Aug 19, 2016 at 8:49

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