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Is it a good idea to check for odd/even length of a palindrome number/string? Most snippets I came across don't do this basic test. If length is even, it can't be a palindrome, no?

if len(var) % 2 != 0:
  # could be a palindrome, continue...
else:
  break

Or is it just better (i.e faster) to start comparing the first and last numbers/letters directly?

Edit: Okay, stupid question, should've thought twice! :)

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4  
Doc, note, I dissent! A fast never prevents a fatness, I diet on cod. –  Dave Jarvis Jan 19 '10 at 17:26
1  
@Nimbuz: Thinking ONCE should suffice :-) –  John Machin Jan 19 '10 at 20:56
    
@John Yea, but I didn't get it the first time, so TWICE... :) –  Nimbuz Jan 19 '10 at 22:01
    
Don't know why, but had to upvote this question.. –  Krishnabhadra Dec 13 '12 at 12:12

7 Answers 7

up vote 16 down vote accepted

ABBA

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Ah! okay, should've thought hard! :) –  Nimbuz Jan 19 '10 at 17:22
4  
Also consider that if you repeat any word forward then backward, whether it has even or odd length, the combined word is going to have an even length, e.g. hello = helloolleh. –  Andrew Noyes Jan 19 '10 at 17:24
8  
I would have never guessed this could be a valid answer to a programming related question. –  James Brooks Jan 19 '10 at 17:56
4  
@James "Dave Jarvis" modified the answer and placed a link, the original answer was quite meaningful. –  Nimbuz Jan 19 '10 at 22:02
    
Haha, my original answer formed an actual sentence, what have you done?!? Nice link! –  TabbyCool Jan 20 '10 at 11:03

The easiest way to check for a palindrome is to simply compare the string against it's reverse:

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

This uses extended slices with a negative step to walk backwards through s and get the reverse.

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2  
did you want two equal signs there (for a Boolean return values)? return s == s[::-1] –  tgray Jan 19 '10 at 17:40
    
use == not = (more characters to make stack overflow happy) –  kramthegram Jan 19 '10 at 17:41
    
@tgray: oh, yes I did. –  sth Jan 19 '10 at 17:41
    
wow, and I wrote a 10 line function for it!! :) –  Nimbuz Jan 19 '10 at 22:03
    
@Nimbuz: know your tools ;-) –  Mef Jan 20 '10 at 0:46

baab = palindrome and has length of 4 which is even

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1  
4 is the only exception? –  Nimbuz Jan 19 '10 at 17:24
1  
no alternatively we could have baaaab - this is still a palindrome –  Aly Jan 19 '10 at 17:35
    
bb is also a palindrome :-) –  Nick Dandoulakis Jan 19 '10 at 17:44
    
"b" is also a palindrome. "" is also a palindrome. Sheesh. –  John Machin Jan 19 '10 at 20:55
2  
@Nick: Rewording: a palindrome can have any length (even 0). –  John Machin Jan 19 '10 at 22:23

Try this:

is_palindrome = lambda s : all(s1==s2 for s1,s2 in zip(s[:len(s)/2],s[-1:-(len(s)+1)/2:-1]))

only checks the front half with the back half, and short-circuits as soon as a mismatch is found.

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This solution takes as much memory as @sth:'s much simpler implementation, is about 1/10th the speed, and says that "ab" is a palindrome. Here's a better solution with only fixed memory overhead: all(s[i]==s[-i-1] for i in range(len(s)//2)) . It's also faster than your example by about 20%. –  Andrew Dalke Jan 19 '10 at 22:56
    
Ouch! My testing was a little too light - I've edited my answer to now fail on testing "ab". My bias lately has been more for iterating over elements than for indexing using integer subscripts, I think I'll take a slightly different run at this using a generator that walks in from both ends of the string. –  Paul McGuire Jan 20 '10 at 0:48
    
Try islice, izip and reversed? all(c1==c2 for c1,c2 in islice(izip(s, reversed(s)), 0, len(s)//2)) –  Andrew Dalke Jan 20 '10 at 3:44
    
Nice!!!!!!!!!!!!!!!!! –  Paul McGuire Jan 20 '10 at 8:01

Simple case: aa.

More complicated case: aaaa.

And so on.

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1  
Whenever I read "aa" I get a knee-jerk reaction to say "pahoehoe". –  Andrew Dalke Jan 19 '10 at 22:41

Even length strings can be palindromes too. Wikipedia doesn't say anything about this restriction.

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n=raw_input("Enter a string==>")
n=int(n)

start=0
term=n

while n>0:
    result=n%10
    start=start*10+result
    n=n/10

print start

if term==start:
    print "True"
else:
    print "False"
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