4

Without using built-in functions, I'm trying to write an algorithm to reverse a string using a list, such as,

foo

to:

oof

Attempt

import re
string = "alice"
string = re.findall('.',string)
length = len(string)
for x in range(1,int(length/2)+1):
    first = string[x-1]
    last = string[length-x]
    string[x-1]=last
    string[length-x]=first

string = "".join(string)
print(string)

What might be a more efficient way to reverse a string, considering time/space complexities (using a list or without using a list would be both OK)?

closed as too broad by Brian Tompsett - 汤莱恩, JL2210, xlm Aug 21 at 23:03

Please edit the question to limit it to a specific problem with enough detail to identify an adequate answer. Avoid asking multiple distinct questions at once. See the How to Ask page for help clarifying this question. If this question can be reworded to fit the rules in the help center, please edit the question.

  • 1
    ''.join(list('alice')[::-1]) – Stephen Rauch Jun 29 at 3:18
  • 3
    string[::-1]. – Sohaib Farooqi Jun 29 at 3:19
  • 1
    Doing without list has less space complexity – rohit prakash Jun 29 at 3:21
  • 1
    Your question isn't bad as long as you make it clear you are trying to implement your own algorithm and are looking to understand more about the shortcomings of your current implementation. I have edited to make it clear. – cs95 Jun 29 at 3:34
3

Your dependence on regex here is unnecessary, re.findall('.',string) can be rewritten as list(string). You will need to replace int(length/2)+1 with length // 2, or len(string) // 2 (you don't need the extra variable) as the former will fail with strings with even length (it runs one extra iteration and un-does the previous iteration's swap).

The swapping code is unnecessarily verbose, because you can just use x, y = y, x to swap two variables, meaning you can just do string[i], string[-i-1] = string[-i-1], string[i].

>>> string = list('alice')
>>> for i in range(len(string) // 2):
...     string[i], string[-i-1] = string[-i-1], string[i]
... 
>>> string
['e', 'c', 'i', 'l', 'a']

The complexity of this is O(N/2), or O(N).

PS, this is all moot when you realise string[::-1] does all of this, in one single concise expression.

  • A little nitpick - your suggestion seems inaccurate - int(length/2)+1 and length // 2 yield different results. – גלעד ברקן Jun 29 at 3:49
  • @גלעדברקן Correct. The latter is right while the former will fail for even length strings (it swaps the adjacent two characters twice). – cs95 Jun 29 at 3:53
1

An easy way to get reversed of string:

s = 'alice'
q = ''.join( list( reversed(s) ) )
print(q)

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