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Hi I'm working on a python function isPalindrome(x) for integers of three digits that returns True if the hundreds digit equals the ones digit and false otherwise. I know that I have to use strings here and this is what I have:

def isPal(x):
    if str(1) == str(3):
        return "True"

    else:
        return "False"

the str(0) is the units place and str(2) is the hundreds place. All I'm getting is False? Thanks!

share|improve this question
    
consider what you're converting to a str and what happens with x. –  Eugen Constantin Dinca Jul 31 '12 at 13:40
4  
I have a suspicion this needs a homework tag. –  Burhan Khalid Jul 31 '12 at 13:42
1  
@sr2222 Is it even possible to ask SO mid-interview...? –  zigg Jul 31 '12 at 14:36
2  
Awkward moment if the interviewer is on SO and sees you posting the question –  Snakes and Coffee Jul 31 '12 at 15:24
1  
@sr2222 I guess I just assumed even with all other things considered, you're either silent or filling the time with BS... in which case you're making yourself look pretty dumb. –  zigg Jul 31 '12 at 18:29

10 Answers 10

Array access is done with [], not (). Also if you are looking for hundreds and units, remember that arrays are 0 indexed, here is a shortened version of the code.

def is_pal(num):
    return num[0] == num[2]

>>> is_pal('123')
False
>>> is_pal('323')
True

You might want to take in the number as a parameter and then convert it to a string:

def is_pal(num):
    x = str(num)
    return x[0] == x[2]

Note that you can simply just check if string is equal to it's reverse which works for any number of digits:

>>> x = '12321'
>>> x == x[::-1]
True
share|improve this answer
    
Thanks I got this though isPal(-343) returns False. def isPal(x): return str(x)[0] == str(x)[2] –  George Putin Jul 31 '12 at 13:46
    
String conversion is poor performance. Better to use division and mod (see my response for some bench-marking). –  aaronlevin Jul 31 '12 at 13:47
    
@GeorgePutin That's also fine –  jamylak Jul 31 '12 at 13:47
    
@GeorgePutin In that case you could take abs() of the integer –  jamylak Jul 31 '12 at 13:48

str(1) will create a string of the integer value 1. Which won't equal the string value of the integer value 3 - so it's always False.

You should return True and False, rather than strings of "True" and "False"...

This is what you're aiming for taking into account the above... (which works with any length)

def pal(num):
    forward = str(num)
    backward = ''.join(reversed(forward))
    return forward == backward
share|improve this answer

Your problem is that str(1) == '1' and str(3) == '3'. You're also returning string values reading 'True' and 'False' instead of using the actual True and False values.

Let me propose a much simpler function for you:

def isPal(x):
    s = str(x)          # convert int to str
    return s == s[::-1] # return True if s is equal to its reverse

s[::-1] creates a reverse of the string; e.g. 'foo'[::-1] == 'oof'. This works because of extended slice notation.

share|improve this answer

Not sure why people are sticking to the string idea when division and modulo will do:

def isPal(x):
    return (x/100)%10 == x%10

if the number is no larger than 999 (3 digits as the OP stated) then it simplifies to

def isPal(x):
    return x/100 == x%10
share|improve this answer
    
Because maybe it needs a few more seconds to understand what your code is actually doing? I'd prefer clarity over performance in most cases (i.e. always when performance is not absolutely crucial -> see premature optimization). –  codeling Jul 31 '12 at 13:52
    
@nyarlathotep: Actually this is the standard numerical way to see if the hundreds digit equals the units digit... –  jmetz Jul 31 '12 at 13:53
    
True. But then why still call it isPal? Because it is only a palindrome if the reverse notation equals the "normal" one, but your function also works for numbers with more than 3 digits, and still only compares 1st and 3rd character... back to the original topic: maybe most people were just influenced by the way the question was written... or were suspecting that the function should actually work for arbitrary strings –  codeling Jul 31 '12 at 13:55
    
@nyarlathotep - You're right I went overboard with the first more general version - the OP states "3 -digit integer" so the second version was sufficient. –  jmetz Jul 31 '12 at 13:58
    
it's still weird why one would write an isPalindrome function which only works for 3-digit numbers... but that's outside of the scope of OP's question I guess :D –  codeling Jul 31 '12 at 13:59

str() casts a value into a str. You want to access each character. You might want to benchmark a few different techniques.

>>> t1 = timeit.Timer(stmt="""\
... def isPal(x):
...     return x//100 == x%10
... isPal(434)
... isPal(438)
... """)
>>> t2 = timeit.Timer(stmt="""\
... def isPal(x):
...     return str(x)[0] == str(x)[2]
... isPal(434)
... isPal(438)
... """)
>>> print "%.2f usec/pass" % (1000000 * t1.timeit(number=100000)/100000)
0.97 usec/pass
>>> print "%.2f usec/pass" % (1000000 * t2.timeit(number=100000)/100000)
2.04 usec/pass

So, it looks like the mod technique works:

def isPal(x):
    return x//100 == x%10
share|improve this answer
    
Consider using x//100 instead of x/100 since you want integer division here. –  mgilson Jul 31 '12 at 13:52
    
@mgilson: If the OP is handling integers as the question states then this makes no difference, though of course if they are using floats you're right. –  jmetz Jul 31 '12 at 14:03
    
(and incidentally none of the string conversion techniques work if the number is represented by a float without first converting to an int) –  jmetz Jul 31 '12 at 14:07
    
@mutzmatron -- it does make a difference in python3.x. Might as well get into the habit now. –  mgilson Jul 31 '12 at 16:29

str(1) just gives you the string representation of the number 1:

>>> x = 357
>>> str(1)
'1'

What you want is the first index of the string representation of x.

>>> x = 357
>>> str(x)    #string representation of x
'357'
>>> str(x)[0] #first index of that
'3'
>>> str(x)[2] #third index of that
'7'
>>> str(x)[0]==str(x)[2] #compare 1st and last
False
>>> x = 525
>>> str(x)[0]==str(x)[2] #compare 1st and last
True
share|improve this answer

you compare number 1 and 3, but you needt to compare index of input variable.

x = 1000
def isPal(x):
    return str(x[-1]) == str(x[-3]):
share|improve this answer

It looks like you still need to study Python syntax

Here is a way to achieve what you need :

>>> def isPal(x):
...     x_as_str = str(x)
...     if len(x_as_str) != 3:
...         raise Exception("{} is not of length 3".format(x))
...     return x_as_str[0] == x_as_str[2]
...
>>> isPal(42)
Traceback (most recent call last):
  File "<input>", line 1, in <module>
  File "<input>", line 4, in isPal
Exception: 42 is not of length 3
>>> isPal(420)
False
>>> isPal(424)
True
share|improve this answer

str(x) delivers the string value of whatever you pass to it, so in your case the string "1" or the string "3". But what you actually want is to access the 1st and 3rd digit of the given number. So, first you want to convert that number to string (e.g. with str(num)), and then you have to consider that indices in strings begin with 0, not with 1. So working code culd e.g. look like this:

def isPal(x):
  if str(x)[0] == str(x)[2]:
    return 'true'
  else:
    return 'false'

Output:

> isPal(101)
true
> isPal (203)
false
share|improve this answer
def is_palindrome() :
a=(raw_input("enter the name : "))
b=a[::-1]
    if b == a:
    print " it is palindarome"
    else:
    print "  it is not palindarome"

is_palindrome()

share|improve this answer
    
Please review your indentation, formatting and spelling of the word "palindrome". –  jonrsharpe Jul 31 at 12:56

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