9

I'm learning about lambda functions in python through tutorials online. I understand how it works but I came across an example that puzzles me (on this page https://www.w3schools.com/python/python_lambda.asp):

def myfunc(n):
    return lambda a : a * n

mydoubler = myfunc(2)
print(mydoubler(11))

I don't understand how "mydoubler" function works here. How does it take 11 as an argument when we didn't define it before. Thank you.

  • 2
    mydoubler is a reference to the lambda returned by myfunc, and takes an a as input. 11 is passed as this a. – Jeppe Feb 16 at 19:25
  • 2
    mydoubler is lambda a: a * n, and so 11 is a, the only argument of that lambda. – trincot Feb 16 at 19:25
  • 1
    you’re essentially making a curried function here – aws_apprentice Feb 16 at 19:54
5

mydoubler is what myfunc(2) returns. It returns a lambda that accepts a single argument, a.

When you call on a function like this: myfunction(this_argument), it is going to resolve to what is returned in that spot. So this is effectively the same as writing mydoubler = lambda a : a * 2

4

A lambda function is a small anonymous function. In your example

myfunc(2) # lambda a: a * 2

You translate it as apply a function on each input element. It is quite obvious when an input is just a scalar, for example

mydoubler(11) #outputs 11 * 2 = 22

But what do you expect when the input is an array or a string?

mydoubler([1,1,1]) #outputs [1,1,1] * 2 = [1,1,1,1,1,1]
mydoubler("str") #outputs "str" * 2 = "strstr"
1

as Python documentation says, lambda is only anonymous function

Lambda expressions (sometimes called lambda forms) are used to create anonymous functions. The expression lambda parameters: expression yields a function object.

you can see it in here

what's going on in your snippet of code is that your myfunc function use n as a constant to new anonymous function that receive one parameter called a and return the multiplication of a with the n. In your calling n value is 2, result by your call myfunc(2). when you call mydoubler(11) you call your new anonymous function when a has value 11

1
  • As per the lambda documentation in https://pythonreference.readthedocs.io/en/latest/docs/operators/lambda.html

    lambda returns an anonymous function.

  • In the above-mentioned example, lambda function is lambda a : a * n and the lambda itself returns some anonymous function which must be something like

    def mydoubler(a, n):
        return a*n
    
  • But here, as we have already passed n=2 while calling myfun(), hence doing mydoubler(a) just returns a*2 (as here n=2) and hence the result.
1

Your example has two functions: the outer function myfunc and the inner function lambda. Normally you can call a lambda function directly:

n = 2
print((lambda a: a * n)(11))
# 22

Or you can assign some variable to this function and call it through this variable:

inner = lambda a: a * n
print(inner(11))
# 22

You can also define some outer function, which will return the inner lambda function:

def myfunc():
    n = 2
    return lambda a: a * n

mydoubler = myfunc()
print(mydoubler(11))
# 22

What is equivalent to:

mydoubler = lambda a: a * 2
print(mydoubler(11))
# 22

In the example above the variable n was declared inside myfunc and in your case n is the parameter of myfunc, which is passed to the lambda function. The function myfunc returns thelambda function with n equal to the argument, which you pass to myfunc by the function call. So the function call myfunc(2) returns the fuction lambda a: a * 2.

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