7

I wrote a script which I wanted to enable for both Python 2 and Python 3.

After importing division and print_function from __future__, my only concern was that my range returns a whole array in Python 2, wasting time and memory.

I added the following 3 lines at the beginning of the script, as a workaround:

if sys.version_info[0] == 3:
    def xrange(i):
        return range(i)

Then, I only used xrange in my code.

Is there some more elegant way to do it rather than my workaround?

  • 2
    There are dedicated libraries to it for you, e.g. six. – Łukasz Rogalski Jun 15 '16 at 11:39
  • I don't want to download 3rd party libraries – SomethingSomething Jun 15 '16 at 11:40
  • 1
    Is your script really so time- and memory-intensive that it matters? – Bryan Oakley Jun 15 '16 at 11:50
  • I usually write the code for Python 3 (dict.items(), range(), ...) and accept that it may perform sub-optimally with Python 2. So far no-one ever complained because most of the time the memory overhead is negligible. – Georg Schölly Aug 17 '18 at 12:51
13

You can simplify it a bit:

if sys.version_info[0] == 3:
    xrange = range

I would do it the other way around:

if sys.version_info[0] == 2:
    range = xrange

If you ever want to drop Python 2.x support, you can just remove those two lines without going through all your code.

However, I strongly suggest considering the six library. It is the de-facto standard for enabling Python 2 and 3 compatibility.

from six.moves import range
  • I totally agree that the other way you suggest seems more usable. It's actually making Python2's range act like Python3's range, instead of intoducing xrange to Python3 and leaving Python3's range different from Python2's range – SomethingSomething Aug 17 '17 at 7:52
  • in python3 the second version gives an error, as there is an "if" statement which is not executed, but then range variable is considered undefined. This is frustrating. I switched to six but it would be actually more preferable to avoid using an additional package. – Sergey Dovgal May 31 '18 at 11:37
  • @SergeyDovgal I just verified that the second version works as expected in Python 3.6.3. Or do you mean that you get an error in your IDE? – Daniel Hepper Jun 4 '18 at 12:36
  • @DanielHepper You are right, I just tried it in an interpreter and it works. However, I recall that the error obtained was related to code launched after installation script. Essentially I got "UnboundLocalError: local variable referenced before assignment", but I need to explain how to reproduce it. I will recall and describe a bit after. – Sergey Dovgal Jun 4 '18 at 16:15

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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