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I've been looking through a tutorial and book but I can find no mention of a built in product function i.e. of the same type as sum(), but I could not find anything such as prod().

Is the only way I could find the product of items in a list by importing the mul() operator?

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possible duplicate of What's the Python function like sum() but for multiplication? –  phimuemue Sep 28 '13 at 9:39

4 Answers 4

up vote 29 down vote accepted

Yes, that's right. Guido rejected the idea for a built-in prod() function because he thought it was rarely needed.

As you suggested, it is not hard to make your own using reduce() and operator.mul():

def prod(iterable):
    return reduce(operator.mul, iterable, 1)

>>> prod(range(1, 5))
24

In Python 3, the reduce() function was moved to the functools module, so you would need to add:

from functools import reduce
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5  
Source of the BDFL's statement: bugs.python.org/issue1093 –  Ray Toal Oct 30 '11 at 22:23
1  
Of course, prod(range(1, 5)) is more properly written math.factorial(4) :) Still too bad this function isn't in the math module either. –  larsmans Oct 30 '11 at 22:24
4  
And of course, people who make frequent use of factorials should cache them in a list so they don't get recalculated on every call ;-) fact=[math.factorial(i) for i in range(100)] –  Raymond Hettinger Oct 30 '11 at 22:29
1  
@RaymondHettinger another fancy way is to use the memoize decorator on the factorial function wiki.python.org/moin/PythonDecoratorLibrary#Memoize –  razpeitia Oct 31 '11 at 3:42
    
Please note that reduce() has been removed from the built-in functions in python3. My answer gives alternatives for python3-users. –  Paul Paulsen Jun 21 at 14:34

Since the reduce() function has been removed in python 3.0, you have to take a different approach.

You could use functools.reduce() to make the change unhappen:

product = functools.reduce(operator.mul, iterable, 1)

Or, if you want to follow the spirit of the python-team (which removed reduce() because they think for would be more readable), do it with a loop:

product = 1
for x in iterable:
    product *= x
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Shouldn't it be operator.mul without parenthesis ? –  Josay Sep 5 at 10:14
    
@Josay Completely right. Thanks for the correction. –  Paul Paulsen Sep 5 at 21:03
from numpy import multiply, product
list1 = [2,2,2]
list2 = [2,2,2]
mult = 3
prod_of_lists = multiply(list1,list2)
>>>[4,4,4]
prod_of_list_by_mult = multiply(list1,mult)
>>>[6,6,6]
prod_of_single_array = product(list1)
>>>8

numpy has many really cool functions for lists!

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2  
I like that this answer points to a powerful numeric library — if the person asking the question really needs to do a product of a series of scalars for any reason other than homework, then the person probably needs to think about something like numbpy for the larger problem they're trying to solve. –  Brandon Rhodes Oct 30 '11 at 23:48
    
I'm not sure that someone who is just starting with the Python tutorial should be pointed at numpy to solve such as simple problem. As they saying goes, "now they have two problems" :-) Once Python basics have be acquired, I do agree that numpy would we a powerful addition to the toolkit for anyone doing number crunching. –  Raymond Hettinger Oct 31 '11 at 21:43

There is no product in Python, but you can define it as

def product(iterable):
    return reduce(operator.mul, iterable, 1)

Or, if you have NumPy, use numpy.product.

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Damn ok thanks for the help, is it possible to define one function inside another? –  George Burrows Oct 30 '11 at 22:26
    
@GeorgeBurrows: yes, you can nest function definitions, though I wouldn't do that unless you're doing higher-order stuff. –  larsmans Oct 30 '11 at 22:27
1  
Re numpy.product, be aware arithmetic is modular when using integer types, and no error is raised on overflow (source). –  akxlr Jul 3 at 12:14

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