164

I'm using Python 3.2. Tried this:

xor = lambda x,y: (x+y)%2
l = reduce(xor, [1,2,3,4])

And got the following error:

l = reduce(xor, [1,2,3,4])
NameError: name 'reduce' is not defined

Tried printing reduce into interactive console - got this error:

NameError: name 'reduce' is not defined


Is reduce really removed in Python 3.2? If that's the case, what's the alternative?

  • 3
    @JBernardo, what is the right tool? – Sergey Dec 31 '11 at 16:35
247

It was moved to functools.

  • 41
    nooooooo! really? why? – juliomalegria Dec 31 '11 at 16:48
  • 43
    @julio.alegria: Because Guido hates it. – Ignacio Vazquez-Abrams Dec 31 '11 at 16:55
  • 4
    The article referenced in @IgnacioVazquez-Abrams makes some really good points about how most cases can be written in a more readable fashion. For me, it's by writing sum(item['key'] for item in list_of_dicts). – connorbode Mar 4 '17 at 22:15
158

You can add

from functools import reduce

before you use the reduce.

  • 2
    The previous user has already answered the question and the answer is same as that of his answer – Kathiravan Natarajan Jul 24 '17 at 1:28
4

Or if you use the six library

from six.moves import reduce
2

In this case I believe that the following is equivalent:

l = sum([1,2,3,4]) % 2

The only problem with this is that it creates big numbers, but maybe that is better than repeated modulo operations?

  • 1
    This is also surely significantly more efficient... – naught101 Dec 14 '16 at 4:59
  • Yep... by a factor of more than 20 for n=10000... – naught101 Dec 14 '16 at 5:02

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