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.

I'm doing a complicated hack in Python, it's a problem when you mix for+lambda+*args (don't do this at home kids), the boring details can be omited, the unique solution I found to resolve the problem is to pass the lambda object into the self lambda in this way:

for ...
    lambda x=x, *y: foo(x, y, <selflambda>)

It's possible?, thanks a lot.

share|improve this question
    
Duplicate: stackoverflow.com/questions/481692/… –  Li0liQ Jan 7 '10 at 22:08
    
I saw it, but I do not want to do recursion, and this solutions has a a lot ofuscation to do recursion... Some simplest solution? –  mkotechno Jan 7 '10 at 22:20
    
Without the boring details this appears to be little more than a decorator. Wouldn't that be simpler? –  S.Lott Jan 7 '10 at 23:11
1  
Oh Y oh Y :)))) –  leppie Jan 8 '10 at 7:16

5 Answers 5

up vote 4 down vote accepted

While your question is genuinely weird, try something like:

>>> import functools
>>> f = lambda selflambda, x=x, *y: foo(x, y, selflambda)
>>> f = functools.partial(f, f)
share|improve this answer
1  
This sounds good! answer flag for now –  mkotechno Jan 7 '10 at 23:25
1  
I'm glad this works for you, but it doesn't do what you asked for. This creates a second function that has a reference to the first function, not a reference to itself. The two functions behave differently and have different arguments. –  Jason Orendorff Jan 8 '10 at 16:02

You are looking for a fixed-point combinator, like the Z combinator, for which Wikipedia gives this Python implementation:

Z = lambda f: (lambda x: f(lambda *args: x(x)(*args)))(lambda x: f(lambda *args: x(x)(*args)))

Z takes one argument, a function describing the function you want, and builds and returns that function.

The function you're looking to build is:

Z(lambda f: lambda x=x, *y: foo(x, y, f))
share|improve this answer

If you want to refer to it, you'll have to give it a name

bar=lambda x=x, *y: foo(x, y, bar)

such is the way of the snake

share|improve this answer
    
This definition grants the power of flowing through the Child-like Empress. However, be warned, you may only use this with Her permission. Tu, was du willst. –  piggles Jan 7 '10 at 22:44
2  
This does not work, because the for loop gives unconsistency to the variable naming. –  mkotechno Jan 7 '10 at 23:12

The easiest way is to write a separate function to create the lambda.

def mkfun(foo, x):
    f = lambda x=x, *y: foo(x, y, f)
    return f

for ...:
    ...mkfun(foo, x)...

This works just like gnibbler's suggestion but can be used in a for loop.

EDIT: I wasn't joking. It really works!

def foo(x, y, bar):
    print x
    if y:
        bar()  # call the lambda. it should just print x again.

# --- gnibbler's answer
funs = []
for x in range(5):
    bar=lambda x=x, *y: foo(x, y, bar)  # What does bar refer to?
    funs.append(bar)
funs[2](2, True)  # prints 2 4 -- oops! Where did the 4 come from?

# --- this answer
def mkfun(x, foo):
    bar = lambda x=x, *y: foo(x, y, bar)  # different bar variable each time
    return bar
funs = []
for x in range(5):
    funs.append(mkfun(x, foo))
funs[2](2, True)  # prints 2 2
share|improve this answer
    
If a lambda is simply an anonymous function, and this technique has to bind it to name, I would think it wouldn't need to use lambda, and is probably harder to read because of it. –  Peter Hansen Jan 7 '10 at 23:39
1  
A function with just a lambda operates exacty equal than a lamba, this resolves nothing. –  mkotechno Jan 7 '10 at 23:51
    
mkotechno: Did you try it? –  Jason Orendorff Jan 8 '10 at 5:11
    
Yes I try it and much more, finally functools.partial was the solution –  mkotechno Jan 8 '10 at 15:08

I don't understand why you want to do this with lambda.

lambda: creates a function object that does not have a name

def: creates a function object that does have a name

a name: very useful for calling yourself

for ...
    def selflambda(x=x, *y):
        return foo(x, y, selflambda)
    ...

Doesn't this do exactly what you requested? I even called it selflambda. If it doesn't do what you want, would you please explain why it doesn't?

EDIT: Okay, Jason Orendorff has pointed out that this won't work, because each time through the loop, the name selflambda will be rebound to a new function, so all the function objects will try to call the newest version of the function. I'll leave this up for the educational value, not because it is a good answer.

share|improve this answer
    
steveha: Look closely. What does the selflambda in that function refer to after the next loop iteration? –  Jason Orendorff Jan 8 '10 at 5:10
    
Hmmm. Okay, so that is why the answer he accepted involves functional.partial(). I'll update my answer. –  steveha Jan 8 '10 at 7:07

Your Answer

 
discard

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

Not the answer you're looking for? Browse other questions tagged or ask your own question.