问题
I need to create a recursive function repeat which takes in a function and uses the function n number of times with the value of x. Here's an iterative version that explains my issue a bit more in detail.
def repeat(fn, n, x):
res = x
for i in range(n):
res = fn(res)
print(res)
return res
print(repeat(lambda x: x**2, 3, 3)) returns 6561
First it takes 3^2, then 3^2^2 which is 81 then again 3^2^2^2 = 6561. How can i make this recursive so it can work like this.
square_three_times = repeat(lambda x: x**2, 3)
print(square_three_times(3)) return 6561
I have tried something like this but im really lost and not sure what to do.
def repeat(fn, n):
if n == 1:
return fn(n):
else:
def result(x):
return fn(n)
return repeat(fn,result(x))
This obviously wouldnt work since the recursion would keep going forever. But im not sure how i should write this code since i first need to calculate 3^2 before taking the next step 9^2 and so on.
回答1:
First, you've got the base case wrong:
if n == 1:
return fn
After all, repeat(fn, 1) is just a function that applies fn once—that's fn.
Now, if the base case is when n == 1, the recursive case is almost always going to be something where you pass n - 1 to yourself.
So, what's the difference between repeat(fn, n) and repeat(fn, n-1)? If you can't figure it out, expand a simple case out in your head or on paper:
repeat(fn, 3)(x): fn(fn(fn(x)))
repeat(fn, 2)(x): fn(fn(x))
And now it's obvious: repeat(fn, n) is the same thing as fn(repeat(fn, n-1)), right? So:
else:
def new_fn(x):
return fn(repeat(fn, n-1)(x))
return new_fn
However, as filmor points out in the comments, it would be easier to use partial here:
def repeat3(fn, n, x):
if n == 1:
return fn(x)
else:
return fn(repeat3(fn, n-1, x))
def repeat(fn, n):
return functools.partial(repeat3, fn, n)
回答2:
You can define this very simply in terms of your old repeat function:
repeat_new = lambda fn, n: lambda x: repeat(fn, n, x)
square_three_times = repeat_new (lambda x: x**2, 3)
print(square_three_times(3))
来源:https://stackoverflow.com/questions/20751635/recursive-function-using-lambda-expression