204

I have a generator that generates a series, for example:

def triangleNums():
    '''generate series of triangle numbers'''
    tn = 0
    counter = 1
    while(True):
        tn = tn + counter
        yield tn
        counter = counter + 1

in python 2.6 I am able to make the following calls:

g = triangleNums() # get the generator
g.next()           # get next val

however in 3.0 if I execute the same two lines of code I'm getting the following error:

AttributeError: 'generator' object has no attribute 'next'

but, the loop iterator syntax does work in 3.0

for n in triangleNums():
    if not exitCond:
       doSomething...

I've not been able to find anything yet that explains this difference in behavior for 3.0.

332

Correct, g.next() has been renamed to g.__next__(). The reason for this is consistency: Special methods like __init__() and __del__ all have double underscores (or "dunder" in the current vernacular), and .next() was one of the few exceptions to that rule. This was fixed in Python 3.0. [*]

But instead of calling g.__next__(), as Paolo says, use next(g).

[*] There are other special attributes that have gotten this fix; func_name, is now __name__, etc.

  • any idea why python 2 eschewed the dunder convention for these methods in the first place? – Rick Teachey Mar 29 '16 at 14:47
  • That's probably just an oversight. – Lennart Regebro Mar 31 '16 at 11:49
117

Try:

next(g)

Check out this neat table that shows the differences in syntax between 2 and 3 when it comes to this.

11

If your code must run under Python2 and Python3, use the 2to3 six library like this:

import six

six.next(g)  # on PY2K: 'g.next()' and onPY3K: 'next(g)'
  • 15
    There's not much need for this unless you need to support Python versions earlier than 2.6. Python 2.6 and 2.7 have the next built-in function. – Mark Dickinson Sep 17 '15 at 17:15

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.