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def is_palindrome(s):

    if s == ' ':
        return True

    if s[0] != s[-1]:
        return False

    return is_palindrome(s[1:-1])

This is my code and it doesn't work. It works for cases such as abab, but not abba. Can anyone tell me why?

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5  
abab is not a palindrome –  AsheeshR Dec 30 '12 at 11:55
7  
def is_palindrome(s): return s == s[::-1] –  Jakub M. Dec 30 '12 at 11:56
    
It's also going to get an infinite recursion if len(s) is odd. –  Andy Hayden Dec 30 '12 at 11:56
    
Unless the string is huge... –  Jakob Bowyer Dec 30 '12 at 11:56
1  
@hayden: Actually, it won't. When len(s) is odd, it'll test for the empty string, then throw an IndexError. –  Martijn Pieters Dec 30 '12 at 12:11
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closed as not a real question by Andy Hayden, Daniel Rikowski, ethrbunny, abbot, Anoop Vaidya Dec 30 '12 at 14:20

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4 Answers

def is_palindrome(s): 
  return s == s[::-1]

if you are concerned about huge strings, you can use iterators:

def is_palindrome(xs):
  return all( imap( lambda a,b: a == b, iter(xs), reversed(xs)) )      
share|improve this answer
    
Obviously this will choke up if the string is massive –  Jakob Bowyer Dec 30 '12 at 11:58
    
In that case, you can do it with reversed iterators –  Jakub M. Dec 30 '12 at 11:59
    
The recursive version will blow up as well... –  mensi Dec 30 '12 at 11:59
    
Who says about recursive version? –  Jakub M. Dec 30 '12 at 12:00
    
That was meant in response to @JakobBowyer and his concerns about big inputs ;) –  mensi Dec 30 '12 at 12:00
show 1 more comment

If you have to use recursion, use a better termination clause:

def is_palindrome(s):
    if len(s) <= 1:
        return True
    if s[0] != s[-1]:
        return False
    return is_palindrome(s[1:-1])

So, when your string is reduced to 1 or 0 characters, you have a palindrome.

This gives:

>>> is_palindrome('abba')
True
>>> is_palindrome('palindrome')
False
>>> is_palindrome('aba')
True

Your original error was to test for a space, while s is being reduced to an empty string instead. Testing for s == '' would also work, but since a single-character string also qualifies as a palindrome you may as well make that an explicit termination test.

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Worth mentioning that recursion isn't the Python's strongest point, AFAIK –  Jakub M. Dec 30 '12 at 12:03
2  
@JakubM.: This is probably homework to teach recursion.. –  Martijn Pieters Dec 30 '12 at 12:03
    
While this is good advice, I like AshRj's solution better, as it identifies and fixes the specific bug in the OP's posted code. –  Paul McGuire Dec 30 '12 at 12:48
    
@PaulMcGuire: Which is taken from the comment (now deleted) on the question I made earlier. Just sayin'. :-) –  Martijn Pieters Dec 30 '12 at 12:51
add comment
def is_palindrome(s):
    if s == '':  # <-- See this change, '' instead of ' '
        return True
    if s[0] != s[-1]:
        return False
    return is_palindrome(s[1:-1])


>>> is_palindrome('')
True
>>> is_palindrome('a')
True
>>> is_palindrome('aba')
True
>>> is_palindrome('abba')
True
>>> is_palindrome('abcba')
True
>>> is_palindrome('abcbac')
False
>>> is_palindrome(' ')
True
>>> is_palindrome('able was i ere i saw elba')
True

This is not a good implementation at all, though. You should try a different approach.

share|improve this answer
    
Ah, of course, in that case you look at an empty string too ('c'[1:-1] == ''). –  Martijn Pieters Dec 30 '12 at 12:03
    
I am sorry if I did! I cannot tell people what to vote on. Not sure why you got a downvote though. –  Martijn Pieters Dec 30 '12 at 12:08
    
Whats the downvote for, now ? –  AsheeshR Dec 30 '12 at 12:10
    
I don't get the downvote either - this fixes the bug in the OP's posted code, testing against ' ' instead of ''. –  Paul McGuire Dec 30 '12 at 12:26
1  
Might also want to add .lower() as part of the test, as traditional palindromes are not typically case-sensitive (left as an exercise for the OP). You could also probably get some extra credit if you show a solution that ignores punctuation, such as a terminating '.'. –  Paul McGuire Dec 30 '12 at 12:38
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Something like this should handle large inputs efficiently (along with testing the values until the middle):

from itertools import islice, izip

def is_palindrome(s):
    middle = len(s) // 2
    return all(i[0] == i[1] for i in islice(izip(s, reversed(s)), middle + 1))

In Python 3 you could just replace izip() with zip().

share|improve this answer
    
By "efficient" I assume you mean in terms of memory, but this solution does double work, likely costing our OP some points on his homework. Zipping s and reversed(s) will compare i[0]==i[last] in the first tuple, and i[last]==i[0] in the last one. Can you come up with a version of this that stops in the middle? –  Paul McGuire Dec 30 '12 at 12:21
    
@PaulMcGuire: please see it now, I think it should now work as you expected –  Tadeck Dec 30 '12 at 13:18
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