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I saw this on a job ad (on SO):

lambda f: (lambda a: a(a))(lambda b: f(lambda *args: b(b)(*args)))

So what I understand is it is an anonymous (unnamed) function, which is composed of two further nested anonymous functions. The innermost function takes a variable list of arguements (*args).

I can't work out what is it supposed to do. Is this something that would actually work or is it impossible to tell without seeing the actual list of args?

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2  
Are you sure it's supposed to do anything? –  Joachim Pileborg Jan 15 at 7:52
    
I would second @mhlester's suggestion that it is a sick joke. With a potential to cause endless recursion?! –  volcano Jan 15 at 8:07
2  
It might not be clear what the code does but it's clear what the manager has to do: Fire the programmer and get someone who writes readable code. –  Matthias Jan 15 at 8:25
    
Perhaps they are expecting a potential candidate to say this is rubbish code... –  ardochhigh Jan 15 at 8:32

4 Answers 4

up vote 7 down vote accepted

I've undone the lambdas just to make it a little easier to read. Here's the code using nested functions:

def f1(f):
    def f2(a):
        return a(a)

    def f3(b):
        def f4(*args):
            return b(b)(*args)

        return f(f4)

    return f2(f3)

This would be equivalent basically to:

f1 = lambda f: (lambda a: a(a))(lambda b: f(lambda *args: b(b)(*args)))

Now let's follow the function calls. First you're going to call f1 with some argument. Then the following is going to happen:

  1. f2 gets called with f3
  2. f2 returns f3 called with itself as a parameter
  3. Now we're inside f3 with b being f3
  4. f3 return f (the parameter you called f1 with) with f4 as the parameter
  5. f is a callback that gets called with a function as its only parameter
  6. If f calls this function then its call will be applied to the result of b called with b. b is f3, so f would essentially be calling the result of f3(f3) which is what f is going to return

Therefore f1 can be reduced to:

def f1(f):
    def f3():
        def f4(*args):
            return f3()(*args)
        return f(f4)

    return f3()

Now I've come up with a way to call f1 that doesn't end in infinite recursion:

called = False

def g1(func):
    def g2(*args):
        print args
        return None

    global called

    if not called:
        called = True
        func(5)
    else:
        return g2

f1(g1) # prints "(5,)"

As you can see, it uses a global to stop the recursion.

Here's another example that runs trials of a Poisson distribution with lambda (lambda is a parameter to the Poisson distribution, not the lambda operator) of 10:

import random

def g3(func):
    def g4(a):
        def g5(b):
            print a
            return a+b
        return g5

    if random.random() < 0.1:
        return g4(1)
    else:
        return g4(func(1))

f1(g3)

And finally something deterministic, not depending on a global, and actually somewhat interesting:

def g6(func):
    def g7(n):
        if n > 0:
            return n*func(n-1)
        else:
            return 1

    return g7

print f1(g6)(5) # 120
print f1(g6)(6) # 720

I'm sure everyone can guess what this function is, but pretty interesting that you can actually get this strange lambda expression to do something useful.

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1  
function should be replaced with def. –  falsetru Jan 15 at 8:08
    
wow, yes, I am stupid here –  CrazyCasta Jan 15 at 8:09
1  
You should define f3 outside f2 but inside f1. –  justhalf Jan 15 at 8:18

The code is creating Y-combinator in Python. This is merely an excercise, not a real world code; don't try to decrypt it.

To understand what Y-combinator itself does, you may refer to this SO question: What is a y-combinator? and to its wikipedia page: Fixed-point combinator.

Maybe this ad is looking for people that know functional programming and/or advanced computer science topics like Lambda calculus and Combinatory logic, which are primary theoretical foundation behind functional programming.

Or maybe their company is Y Combinator winner startup, and they are merely looking for Python programmers with CS background.

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Not just *args, it's hard to tell what it is without knowing what a, b, f, and *args are.

The rabbit hole goes especially deep when b is passed as argument to function b, and that result is a function to which args is passed.

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This is quite equivalent, without too much nesting:

def f1(f):
    def f2(a): return a(a)
    def f3(b):
        def f4(*args): return b(b)(*args)
        return f(f4)
    return f2(f3)

f2 can be replaced, so we get

def f1(f):
    def f3(b):
        def f4(*args): return b(b)(*args)
        return f(f4)
    return f3(f3) # was f2(f3)

f3 is always called with itself, so we replace b with f3:

def f1(f):
    def f3():
        def f4(*args): return f3()(*args)
        return f(f4)
    return f3()

So what does it do?

We see f3() returns whatever f returns, and this is supposed to be called with an arbitrary number of arguments.

f is supposed to take a function taking another function with *args and returning such a function.

Calling f1(f) returns whatever f(f4) returns.

Let's test it:

  • With f=lambda ff: lambda *args: ff(*args), f1(f)() gives us an infinite recursion.
  • f=lambda ff: lambda *args: (ff, args) doesn't call the given function, so we can safely play with it:
    • f1(f)(4) gives us a tuple (f4, (4,)).
    • If we use that tuple's 0th element: f1(f)(4)[0](1), we get (f4, (1,)).
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