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Definition:

A palindrome is a word, phrase, number or other sequence of units that has the property of reading the same in either direction

How to check if the given string is a palindrome?

This was one of the FAIQ [Frequently Asked Interview Question] a while ago but that mostly using C.

Looking for solutions in any and all languages possible.

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14  
A man, a plan, a canal, Panama –  Jonathan Sep 9 '08 at 14:26
17  
Go hang a salami. I'm a lasagna hog. –  xanadont Sep 9 '08 at 14:44
4  
Do you care about punctuation? Case? What about locale-sensitive case folding? –  erickson Sep 9 '08 at 15:19
2  
I'm disappointed that, as far as I can tell, no one implemented it with a stack. –  Nick Hodges Sep 7 '11 at 3:54
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64 Answers

PHP sample:

$string = "A man, a plan, a canal, Panama";

function is_palindrome($string)
{
    $a = strtolower(preg_replace("/[^A-Za-z0-9]/","",$string));
    return $a==strrev($a);
}

Removes any non-alphanumeric characters (spaces, commas, exclamation points, etc.) to allow for full sentences as above, as well as simple words.

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3  
It doesn't work for numbers and languages other then English. –  J.F. Sebastian Nov 4 '08 at 15:56
13  
Just curious - why not strtolower() first so you have a shorter regex? –  Chris Lutz Jul 3 '09 at 9:03
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Windows XP (might also work on 2000) or later BATCH script:

@echo off

call :is_palindrome %1
if %ERRORLEVEL% == 0 (
    echo %1 is a palindrome
) else (
    echo %1 is NOT a palindrome
)
exit /B 0

:is_palindrome
    set word=%~1
    set reverse=
    call :reverse_chars "%word%"
    set return=1
    if "$%word%" == "$%reverse%" (
        set return=0
    )
exit /B %return%

:reverse_chars
    set chars=%~1
    set reverse=%chars:~0,1%%reverse%
    set chars=%chars:~1%
    if "$%chars%" == "$" (
        exit /B 0
    ) else (
        call :reverse_chars "%chars%"
    )
exit /B 0
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5  
Awesome, batch FTW! –  Simon Steele Sep 12 '08 at 15:51
3  
+1 because you used a batch script... badass. –  Daniel Schaffer Apr 17 '09 at 14:29
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Language agnostic meta-code then...

rev = StringReverse(originalString)
return ( rev == originalString );
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8  
I'm surprised this one is voted up so much considering it's wrong. As people have pointed out, it will not work for all palindromes, specifically with punctuation etc. The wisdom of crowds eh.. –  SCdF Oct 23 '08 at 18:48
11  
With a strict definition of a palindrome, however, this works exactly. The definition does not specify what "reading the same in either direction" means, and as such, a strict character for character comparison, which this is, is the most simple algorithm. –  cdeszaq Oct 27 '08 at 21:39
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C# in-place algorithm. Any preprocessing, like case insensitivity or stripping of whitespace and punctuation should be done before passing to this function.

boolean IsPalindrome(string s) {
    for (int i = 0; i < s.Length / 2; i++)
    {
        if (s[i] != s[s.Length - 1 - i]) return false;
    }
    return true;
}


Edit: removed unnecessary "+1" in loop condition and spent the saved comparison on removing the redundant Length comparison. Thanks to the commenters!

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1  
Sorry, I'm talking about the s.Length / 2 + 1. It looks like the plus one will only ever make you check the middle letter in an odd length word, or the middle two letters in an even length word twice. –  Imbue Oct 28 '08 at 19:05
1  
I've agreed with Imbue. Consider s = 'aba': s.Length / 2 == 1 -> i<=1 -> s[1] = s[3 - 1 - 1] (unnecessary comparison of middle letter with itself) or s = 'ab': s.Length / 2 == 1 -> i <= 1 -> s[1] = s[2 - 1 - 1] (letters checked twice unnecessary). –  J.F. Sebastian Nov 4 '08 at 12:15
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A more Ruby-style rewrite of Hal's Ruby version:

class String
  def palindrome?
    (test = gsub(/[^A-Za-z]/, '').downcase) == test.reverse
  end
end

Now you can call palindrome? on any string.

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C#: LINQ

var str = "a b a";
var test = Enumerable.SequenceEqual(str.ToCharArray(), 
           str.ToCharArray().Reverse());
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Unoptimized Python:

>>> def is_palindrome(s):
...     return s == s[::-1]
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1  
It doesn't work for sequences that doesn't support extended slicing. python.org/doc/2.5.2/ref/slicings.html . But def ispal(iterable): s = list(iterable); return s == s[::-1] does work. –  J.F. Sebastian Nov 4 '08 at 16:38
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C in the house. (not sure if you didn't want a C example here)

bool IsPalindrome(char *s)
{
    int  i,d;
    int  length = strlen(s);
    char cf, cb;

    for(i=0, d=length-1 ; i < length && d >= 0 ; i++ , d--)
    {
    	while(cf= toupper(s[i]), (cf < 'A' || cf >'Z') && i < length-1)i++;
    	while(cb= toupper(s[d]), (cb < 'A' || cb >'Z') && d > 0       )d--;
    	if(cf != cb && cf >= 'A' && cf <= 'Z' && cb >= 'A' && cb <='Z')
    		return false;
    }
    return true;
}

That will return true for "racecar", "Racecar", "race car", "racecar ", and "RaCe cAr". It would be easy to modify to include symbols or spaces as well, but I figure it's more useful to only count letters(and ignore case). This works for all palindromes I've found in the answers here, and I've been unable to trick it into false negatives/positives.

Also, if you don't like bool in a "C" program, it could obviously return int, with return 1 and return 0 for true and false respectively.

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2  
I think you can optimize the exit condition to: for( ...; d>=i; ... ) It will cut the execution time by half –  Uri Mar 31 '11 at 8:16
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Using a good data structure usually helps impress the professor:

Push half the chars onto a stack (Length / 2).
Pop and compare each char until the first unmatch.
If the stack has zero elements: palindrome.
*in the case of a string with an odd Length, throw out the middle char.

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Java solution:

public class QuickTest {

public static void main(String[] args) {
    check("AmanaplanacanalPanama".toLowerCase());
    check("Hello World".toLowerCase());
}

public static void check(String aString) {
    System.out.print(aString + ": ");
    char[] chars = aString.toCharArray();
    for (int i = 0, j = (chars.length - 1); i < (chars.length / 2); i++, j--) {
        if (chars[i] != chars[j]) {
            System.out.println("Not a palindrome!");
            return;
        }
    }
    System.out.println("Found a palindrome!");
}

}

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Here's a python way. Note: this isn't really that "pythonic" but it demonstrates the algorithm.

def IsPalindromeString(n):
    myLen = len(n)
    i = 0
    while i <= myLen/2:
        if n[i] != n[myLen-1-i]:
            return False
        i += 1
    return True
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3  
btw, CamelCase is not recommended for function and local variable names. See 'Style Guide for Python Code' python.org/dev/peps/pep-0008 –  J.F. Sebastian Nov 4 '08 at 16:26
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I'm seeing a lot of incorrect answers here. Any correct solution needs to ignore whitespace and punctuation (and any non-alphabetic characters actually) and needs to be case insensitive.

A few good example test cases are:

"A man, a plan, a canal, Panama."

"A Toyota's a Toyota."

"A"

""

As well as some non-palindromes.

Example solution in C# (note: empty and null strings are considered palindromes in this design, if this is not desired it's easy to change):

public static bool IsPalindrome(string palindromeCandidate)
{
    if (string.IsNullOrEmpty(palindromeCandidate))
    {
        return true;
    }
    Regex nonAlphaChars = new Regex("[^a-z0-9]");
    string alphaOnlyCandidate = nonAlphaChars.Replace(palindromeCandidate.ToLower(), "");
    if (string.IsNullOrEmpty(alphaOnlyCandidate))
    {
        return true;
    }
    int leftIndex = 0;
    int rightIndex = alphaOnlyCandidate.Length - 1;
    while (rightIndex > leftIndex)
    {
        if (alphaOnlyCandidate[leftIndex] != alphaOnlyCandidate[rightIndex])
        {
            return false;
        }
        leftIndex++;
        rightIndex--;
    }
    return true;
}
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Delphi

function IsPalindrome(const s: string): boolean;
var
  i, j: integer;
begin
  Result := false;
  j := Length(s);
  for i := 1 to Length(s) div 2 do begin
    if s[i] <> s[j] then
      Exit;
    Dec(j);
  end;
  Result := true;
end;
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EDIT: from the comments:

bool palindrome(std::string const& s) 
{ 
  return std::equal(s.begin(), s.end(), s.rbegin()); 
}


The c++ way.

My naive implementation using the elegant iterators. In reality, you would probably check and stop once your forward iterator has past the halfway mark to your string.

#include <string>
#include <iostream>

using namespace std;
bool palindrome(string foo)
{
    string::iterator front;
    string::reverse_iterator back;
    bool is_palindrome = true;
    for(front = foo.begin(), back = foo.rbegin();
        is_palindrome && front!= foo.end() && back != foo.rend();
        ++front, ++back
        )
    {
        if(*front != *back)
            is_palindrome = false;
    }
    return is_palindrome;
}
int main()
{
    string a = "hi there", b = "laval";

    cout << "String a: \"" << a << "\" is " << ((palindrome(a))? "" : "not ") << "a palindrome." <<endl;
    cout << "String b: \"" << b << "\" is " << ((palindrome(b))? "" : "not ") << "a palindrome." <<endl;

}
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1  
Or perhaps: bool palindrome(string foo) { return std::equal(foo.begin(), foo.end(), foo.rbegin()); } –  Daniel James Sep 11 '08 at 11:12
1  
love the std::equal() solution! –  wilhelmtell Aug 21 '11 at 14:05
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boolean isPalindrome(String str1) {
  //first strip out punctuation and spaces
  String stripped = str1.replaceAll("[^a-zA-Z0-9]", "");
  return stripped.equalsIgnoreCase((new StringBuilder(stripped)).reverse().toString());
}

Java version

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Here's my solution, without using a strrev. Written in C#, but it will work in any language that has a string length function.

private static bool Pal(string s) {
	for (int i = 0; i < s.Length; i++) {
		if (s[i] != s[s.Length - 1 - i]) {
			return false;
		}
	}
	return true;
}
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Here's a Python version that deals with different cases, punctuation and whitespace.

import string

def is_palindrome(palindrome):
    letters = palindrome.translate(string.maketrans("",""),
                  string.whitespace + string.punctuation).lower()
    return letters == letters[::-1]

Edit: Shamelessly stole from Blair Conrad's neater answer to remove the slightly clumsy list processing from my previous version.

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C++

std::string a = "god";
std::string b = "lol";

std::cout << (std::string(a.rbegin(), a.rend()) == a) << " " 
          << (std::string(b.rbegin(), b.rend()) == b);

Bash

function ispalin { [ "$( echo -n $1 | tac -rs . )" = "$1" ]; }
echo "$(ispalin god && echo yes || echo no), $(ispalin lol && echo yes || echo no)"

Gnu Awk

/* obvious solution */
function ispalin(cand, i) { 
    for(i=0; i<length(cand)/2; i++) 
        if(substr(cand, length(cand)-i, 1) != substr(cand, i+1, 1)) 
            return 0; 
    return 1; 
}

/* not so obvious solution. cough cough */
{ 
    orig = $0;
    while($0) { 
        stuff = stuff gensub(/^.*(.)$/, "\\1", 1); 
        $0 = gensub(/^(.*).$/, "\\1", 1); 
    }
    print (stuff == orig); 
}

Haskell

Some brain dead way doing it in Haskell

ispalin :: [Char] -> Bool
ispalin a = a == (let xi (y:my) = (xi my) ++ [y]; xi [] = [] in \x -> xi x) a

Plain English

"Just reverse the string and if it is the same as before, it's a palindrome"

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An obfuscated C version:

int IsPalindrome (char *s)
{
  char*a,*b,c=0;
  for(a=b=s;a<=b;c=(c?c==1?c=(*a&~32)-65>25u?*++a,1:2:c==2?(*--b&~32)-65<26u?3:2:c==3?(*b-65&~32)-(*a-65&~32)?*(b=s=0,a),4:*++a,1:0:*++b?0:1));
  return s!=0;
}
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Here's my solution in c#

static bool isPalindrome(string s)
{
	string allowedChars = "abcdefghijklmnopqrstuvwxyz"+
        "1234567890ABCDEFGHIJKLMNOPQRSTUVWXYZ";
	string compareString = String.Empty;
	string rev = string.Empty;

	for (int i = 0; i <= s.Length - 1; i++)
	{
		char c = s[i];

		if (allowedChars.IndexOf(c) > -1)
		{
			compareString += c;
		}
	}


	for (int i = compareString.Length - 1; i >= 0; i--)
	{
	    char c = compareString[i];
	    rev += c;
	}

	return rev.Equals(compareString, 
        StringComparison.CurrentCultureIgnoreCase);
}
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This Java code should work inside a boolean method:

Note: You only need to check the first half of the characters with the back half, otherwise you are overlapping and doubling the amount of checks that need to be made.

private static boolean doPal(String test) {
    for(int i = 0; i < test.length() / 2; i++) {
        if(test.charAt(i) != test.charAt(test.length() - 1 - i)) {
            return false;
        }
    }
    return true;
}
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Another C++ one. Optimized for speed and size.

bool is_palindrome(const std::string& candidate) {
    for(std::string::const_iterator left = candidate.begin(), right = candidate.end(); left < --right ; ++left)
        if (*left != *right)
            return false;
    return true;
}

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Lisp:

(defun palindrome(x) (string= x (reverse x)))
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Three versions in Smalltalk, from dumbest to correct.


In Smalltalk, = is the comparison operator:

isPalindrome: aString
    "Dumbest."
    ^ aString reverse = aString


The message #translateToLowercase returns the string as lowercase:

isPalindrome: aString
    "Case insensitive"
    |lowercase|
    lowercase := aString translateToLowercase.
    ^ lowercase reverse = lowercase


And in Smalltalk, strings are part of the Collection framework, you can use the message #select:thenCollect:, so here's the last version:

isPalindrome: aString
    "Case insensitive and keeping only alphabetic chars
    (blanks & punctuation insensitive)."
    |lowercaseLetters|
    lowercaseLetters := aString
        select: [:char | char isAlphabetic]
        thenCollect: [:char | char asLowercase]. 
    ^ lowercaseLetters reverse = lowercaseLetters
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Note that in the above C++ solutions, there was some problems.

One solution was inefficient because it passed an std::string by copy, and because it iterated over all the chars, instead of comparing only half the chars. Then, even when discovering the string was not a palindrome, it continued the loop, waiting its end before reporting "false".

The other was better, with a very small function, whose problem was that it was not able to test anything else than std::string. In C++, it is easy to extend an algorithm to a whole bunch of similar objects. By templating its std::string into "T", it would have worked on both std::string, std::wstring, std::vector and std::deque. But without major modification because of the use of the operator <, the std::list was out of its scope.

My own solutions try to show that a C++ solution won't stop at working on the exact current type, but will strive to work an anything that behaves the same way, no matter the type. For example, I could apply my palindrome tests on std::string, on vector of int or on list of "Anything" as long as Anything was comparable through its operator = (build in types, as well as classes).

Note that the template can even be extended with an optional type that can be used to compare the data. For example, if you want to compare in a case insensitive way, or even compare similar characters (like è, é, ë, ê and e).

Like king Leonidas would have said: "Templates ? This is C++ !!!"

So, in C++, there are at least 3 major ways to do it, each one leading to the other:

Solution A: In a c-like way

The problem is that until C++0X, we can't consider the std::string array of chars as contiguous, so we must "cheat" and retrieve the c_str() property. As we are using it in a read-only fashion, it should be ok...


bool isPalindromeA(const std::string & p_strText)
{
   if(p_strText.length() < 2) return true ;
   const char * pStart = p_strText.c_str() ;             
   const char * pEnd = pStart + p_strText.length() - 1 ; 

   for(; pStart < pEnd; ++pStart, --pEnd)
   {
      if(*pStart != *pEnd)
      {
         return false ;
      }
   }

   return true ;
}


Solution B: A more "C++" version

Now, we'll try to apply the same solution, but to any C++ container with random access to its items through operator []. For example, any std::basic_string, std::vector, std::deque, etc. Operator [] is constant access for those containers, so we won't lose undue speed.


template <typename T>
bool isPalindromeB(const T & p_aText)
{
   if(p_aText.empty()) return true ;
   typename T::size_type iStart = 0 ;
   typename T::size_type iEnd = p_aText.size() - 1 ;

   for(; iStart < iEnd; ++iStart, --iEnd)
   {
      if(p_aText[iStart] != p_aText[iEnd])
      {
         return false ;
      }
   }

   return true ;
}


Solution C: Template powah !

It will work with almost any unordered STL-like container with bidirectional iterators For example, any std::basic_string, std::vector, std::deque, std::list, etc. So, this function can be applied on all STL-like containers with the following conditions: 1 - T is a container with bidirectional iterator 2 - T's iterator points to a comparable type (through operator =)


template <typename T>
bool isPalindromeC(const T & p_aText)
{
   if(p_aText.empty()) return true ;
   typename T::const_iterator pStart = p_aText.begin() ;
   typename T::const_iterator pEnd = p_aText.end() ;
   --pEnd ;

   while(true)
   {
      if(*pStart != *pEnd)
      {
         return false ;
      }

      if((pStart == pEnd) || (++pStart == pEnd))
      {
         return true ;
      }

      --pEnd ;
   }
}


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Ruby:

class String
    def is_palindrome?
        letters_only = gsub(/\W/,'').downcase
        letters_only == letters_only.reverse
    end
end

puts 'abc'.is_palindrome? # => false
puts 'aba'.is_palindrome? # => true
puts "Madam, I'm Adam.".is_palindrome? # => true
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Many ways to do it. I guess the key is to do it in the most efficient way possible (without looping the string). I would do it as a char array which can be reversed easily (using C#).

string mystring = "abracadabra";

char[] str = mystring.ToCharArray();
Array.Reverse(str);
string revstring = new string(str);

if (mystring.equals(revstring))
{
    Console.WriteLine("String is a Palindrome");
}
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In Ruby, converting to lowercase and stripping everything not alphabetic:

def isPalindrome( string )
    ( test = string.downcase.gsub( /[^a-z]/, '' ) ) == test.reverse
end

But that feels like cheating, right? No pointers or anything! So here's a C version too, but without the lowercase and character stripping goodness:

#include <stdio.h>
int isPalindrome( char * string )
{
    char * i = string;
    char * p = string;
    while ( *++i ); while ( i > p && *p++ == *--i );
    return i <= p && *i++ == *--p;
}
int main( int argc, char **argv )
{
    if ( argc != 2 )
    {
        fprintf( stderr, "Usage: %s <word>\n", argv[0] );
        return -1;
    }
    fprintf( stdout, "%s\n", isPalindrome( argv[1] ) ? "yes" : "no" );
    return 0;
}

Well, that was fun - do I get the job ;^)

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Using Java, using Apache Commons String Utils:

public boolean isPalindrome(String phrase) {
  phrase = phrase.toLowerCase().replaceAll("[^a-z]", "");
  return StringUtils.reverse(phrase).equals(phrase);
}
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I had to do this for a programming challenge, here's a snippet of my Haskell:

isPalindrome :: String -> Bool
isPalindrome n = (n == reverse n)
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