+ 1
Reverse of the sequence with recursion
Hi! This is my code to solve the assignment. I used dynamic data structure "l[]". But it must bu solved without using any type of it. How can it be done? def reverse(l): if len(l) > 1: print(l[len(l)-1]) del l[len(l)-1] return reverse(l) else: return l[0] def ss(n): if n != 0: l.append(n) return ss(int(input())) elif n == 0 and len(l) == 0: return n elif n == 0 and len(l) != 0: l.append(n) return reverse(l) l = [] print(ss(int(input())))
4 Réponses
+ 1
So, if I get it right, what you want is to print your input in backwards order as long as input isn't 0.
Not sure how python works but maybe this could work:
def ss(n):
if n != 0:
ss(int(input()))
print(n)
else:
return
Each call will stop at another ss() call and will resume in backwards order when last call returns (when input is 0)
0
BlazingMagpie, thank you for working example. But it need's to print null too like:
def print_reversed(seq, pos=0):
elem = seq[pos]
if elem != 0:
print_reversed(seq, pos + 1)
print(elem)
print_reversed(tuple(map(int, sys.stdin.read().split())))
0
Thank you, guys! I solved the issue. So I need to output the null too. And here it is. Thanks for your time & help!
def reverse(n):
if n != 0:
reverse(int(input()))
print(n)
else:
print(n)
reverse(int(input()))