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This is my code:

filter(lambda n,r: not n%r,range(10,20))

I get the error:

TypeError: <lambda>() takes exactly 2 arguments (1 given)

So then I tried:

foo=lambda n,r:not n%r

Which worked fine. So I thought this will work:

bar=filter(foo,range(10,20))

but again:

TypeError: <lambda>() takes exactly 2 arguments (1 given)

Something similar happens for map as well. But reduce works fine. What am I doing wrong? Am I missing something crucial needed in order to use filter or map?

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1  
filter() passes a single argument to your lambda, when it expects two. Using a variable won't let you get around it. –  NullUserException Oct 5 '12 at 18:13

3 Answers 3

up vote 3 down vote accepted

Why do you use 2 arguments? filter() and map() require a function with a single argument only, e.g.:

filter(lambda x: x >= 2, [1, 2, 3])
>>> [2, 3]

To find the factors of a number (you can substitute it with lambda as well):

def factors(x):
    return [n for n in range(1, x + 1) if x % n == 0]

factors(20)
>>> [1, 2, 4, 5, 10, 20]
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Ok that makes sense. So then how do I go about writing this code, which has to return factors for a number. I want to use filter or map so that I understand it better...or at least lambda –  ritratt Oct 5 '12 at 18:19
1  
Please see the updated answer. –  BasicWolf Oct 5 '12 at 18:30
1  
Of course you could optimize this to just search up to sqrt(x), and add x/n and n to the results whenever x % n == 0. It will make a difference when the numbers get larger. –  NullUserException Oct 5 '12 at 22:12

Because filter in python takes only one argument. So you need to define a lambda/function that takes only one argument if you want to use it in filter.

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Your lambda function takes two arguments n and r. filter must be called with a function that takes one argument and returns True when the item should be kept. Maybe you meant to define r or n outside your lambda function and then capture it in the closure.

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