Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

A regular function can contain a call to itself in its definition, no problem. I can't figure out how to do it with a lambda function though for the simple reason that the lambda function has no name to refer back to. Is there a way to do it? How?

share|improve this question
2  
I'm tempted to tag this what-the-heck or you-dont-want-to-do-this. Why don't you just use a normal function? –  phihag Jan 26 '09 at 22:48
3  
I want to do is to run reduce() on an tree. The lambda works great on a 1-D list and recursion felt like a natural way to make it work on a tree. That said, the real reason is that I'm just learning Python, so I'm kicking the tires. –  dsimard Jan 26 '09 at 23:12
    
Reduce works fine with named functions. Guido wanted to remove lambda expressions from the language for a while. They survived, but there's still no reason why you need to use them in any situation. –  John Fouhy Jan 26 '09 at 23:34
1  
please don't use reduce. Reduce with a recursive function is crazy complex. It will take forever. I think it's O(n**3) or something –  S.Lott Jan 27 '09 at 0:21
    
@S.Lott bummer. Is that a problem with the Python interpreter or something more fundamental that I don't understand yet? –  dsimard Jan 27 '09 at 7:42

8 Answers 8

up vote 34 down vote accepted

The only way I can think of to do this amounts to giving the function a name:

fact = lambda x: 1 if x == 0 else x * fact(x-1)

or alternately, for earlier versions of python:

fact = lambda x: x == 0 and 1 or x * fact(x-1)

Update: using the ideas from the other answers, I was able to wedge the factorial function into a single unnamed lambda:

>>> map(lambda n: (lambda f, *a: f(f, *a))(lambda rec, n: 1 if n == 0 else n*rec(rec, n-1), n), range(10))
[1, 1, 2, 6, 24, 120, 720, 5040, 40320, 362880]

So it's possible, but not really recommended!

share|improve this answer
2  
map(lambda n: (lambda f, n: f(f, n))(lambda f, n: n*f(f, n-1) if n > 0 else 1, n), range(10)) –  J.F. Sebastian Jan 27 '09 at 12:39
1  
Useless and fun. That's why I love computing. –  e-satis Nov 18 '09 at 13:23
1  
FWIW, here's how to generate numbers in the Fibonacci series with the same technique (assigning it a name): fibonacci = lambda n: 0 if n == 0 else 1 if n == 1 else fibonacci(n-1)+fibonacci(n-2) . –  martineau Nov 1 '10 at 19:52
    
Another way of genreating Fibonacci numbers using lambdas and recusivity: f = lambda x: 1 if x in (1,2) else f(x-1)+f(x-2) –  Juan Gallostra Nov 26 '13 at 14:25
1  
Can somebody state why doing a recursive anonymous function call is "not recommended" –  ThorSummoner Jun 8 '14 at 8:36

without reduce, map, named lambdas or python internals:

(lambda a:lambda v:a(a,v))(lambda s,x:1 if x==0 else x*s(s,x-1))(10)
share|improve this answer

You can't directly do it, because it has no name. But with a helper function like the Y-combinator Lemmy pointed to, you can create recursion by passing the function as a parameter to itself (as strange as that sounds):

# helper function
def recursive(f, *p, **kw):
   return f(f, *p, **kw)

def fib(n):
   # The rec parameter will be the lambda function itself
   return recursive((lambda rec, n: rec(rec, n-1) + rec(rec, n-2) if n>1 else 1), n)

# using map since we already started to do black functional programming magic
print map(fib, range(10))

This prints the first ten Fibonacci numbers: [1, 1, 2, 3, 5, 8, 13, 21, 34, 55],

share|improve this answer
    
I think I finally understand what the Y combinator is for. But I think that in Python it would generally be easier to just use "def" and give the function a name... –  pdc Jan 28 '09 at 13:59
    
Funny thing is, your Fibonacci example is a great example of something more naturally done with a generator. :-) –  pdc Jan 28 '09 at 13:59
    
A much better answer than "No". –  new123456 Jul 28 '11 at 22:19
    
+1, that's only answer I can understand, excluding these saying it's impossible and the function must have name to call herself. –  GingerPlusPlus Oct 26 '14 at 21:59

Contrary to what sth said, you CAN directly do this.

(lambda f: (lambda x: f(lambda v: x(x)(v)))(lambda x: f(lambda v: x(x)(v))))(lambda f: (lambda i: 1 if (i == 0) else i * f(i - 1)))(n)

The first part is the fixed-point combinator Y that facilitates recursion in lambda calculus

Y = (lambda f: (lambda x: f(lambda v: x(x)(v)))(lambda x: f(lambda v: x(x)(v))))

the second part is the factorial function fact defined recursively

fact = (lambda f: (lambda i: 1 if (i == 0) else i * f(i - 1)))

Y is applied to fact to form another lambda expression

F = Y(fact)

which is applied to the third part, n, which evaulates to the nth factorial

>>> n = 5
>>> F(n)
120

or equivalently

>>> (lambda f: (lambda x: f(lambda v: x(x)(v)))(lambda x: f(lambda v: x(x)(v))))(lambda f: (lambda i: 1 if (i == 0) else i * f(i - 1)))(5)
120

If however you prefer fibs to facts you can do that too using the same combinator

>>> (lambda f: (lambda x: f(lambda v: x(x)(v)))(lambda x: f(lambda v: x(x)(v))))(lambda f: (lambda i: f(i - 1) + f(i - 2) if i > 1 else 1))(5)
8
share|improve this answer
    
Nice job, you just turned Python into Lisp :) –  Hawk Weisman Aug 13 '14 at 14:25

Yes. I have two ways to do it, and one was already covered. This is my preferred way.

(lambda v: (lambda n: n * __import__('types').FunctionType(
        __import__('inspect').stack()[0][0].f_code, 
        dict(__import__=__import__, dict=dict)
    )(n - 1) if n > 1 else 1)(v))(5)
share|improve this answer
4  
I don't know Python, but that looks terrible. There's really got to be a better way. –  Kyle Cronin Jan 27 '09 at 3:41
    
You have to learn to appreciate obsfucated code, man. :( –  habnabit Jan 27 '09 at 4:56
3  
+1 for teaching me a new way to abuse Python. –  Deestan Jan 27 '09 at 10:14
    
nobody - the point is that this looks horrible for a reason. Python isn't designed for it, and it's bad practice (in Python). Lambdas are limited by design. –  Gregg Lind Jan 27 '09 at 22:11
10  
Yeah, +1 for the worst Python code ever. When Perl people say "You can write maintainable code in Perl if you know what you are doing", I say "Yeah, and you can write unmaintainable code in Python if you know what you are doing". :-) –  Lennart Regebro Jul 29 '09 at 22:11

I have never used Python, but this is probably what you are looking for.

share|improve this answer

If you were truly masochistic, you might be able to do it using C extensions, but to echo Greg (hi Greg!), this exceeds the capability of a lambda (unnamed, anonymous) functon.

No. (for most values of no).

share|improve this answer
2  
( > this exceeds the capability of a lambda ) --- No, it doesn't. The Y combinator is like the most famous abstract construct there is and it does do that without any hacks. –  Danny Milosavljevic Jul 3 '12 at 15:34

Well, not exactly pure lambda recursion, but it's applicable in places, where you can only use lambdas, e.g. reduce, map and list comprehensions, or other lambdas. The trick is to benefit from list comprehension and Python's name scope. The following example traverses the dictionary by the given chain of keys.

>>> data = {'John': {'age': 33}, 'Kate': {'age': 32}}
>>> [fn(data, ['John', 'age']) for fn in [lambda d, keys: None if d is None or type(d) is not dict or len(keys) < 1 or keys[0] not in d else (d[keys[0]] if len(keys) == 1 else fn(d[keys[0]], keys[1:]))]][0]
33

The lambda reuses its name defined in the list comprehension expression (fn). The example is rather complicated, but it shows the concept.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.