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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.

closed as too broad by durron597, Paul Roub, Tiny Giant, gnat, Shankar Damodaran Sep 24 '15 at 3:50

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.

  • 19
    A man, a plan, a canal, Panama – Jonathan Sep 9 '08 at 14:26
  • 21
    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
  • well, i didnt think of punctuation issues which could be ignored! – prakash Sep 11 '08 at 14:43
  • 3
    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

69 Answers 69

0

OCaml:

let rec palindrome s =
  s = (tailrev s)

source

0

How about this PHP example:

function noitcnuf( $returnstrrevverrtsnruter, $functionnoitcnuf) {
    $returnstrrev  = "returnstrrevverrtsnruter";
    $verrtsnruter = $functionnoitcnuf;
    return (strrev ($verrtsnruter) == $functionnoitcnuf) ; 
}
0
public class palindrome {
public static void main(String[] args) {
    StringBuffer strBuf1 = new StringBuffer("malayalam");
    StringBuffer strBuf2 = new StringBuffer("malayalam");
    strBuf2.reverse();


    System.out.println(strBuf2);
    System.out.println((strBuf1.toString()).equals(strBuf2.toString()));
    if ((strBuf1.toString()).equals(strBuf2.toString()))
        System.out.println("palindrome");
    else
        System.out.println("not a palindrome");
    }
}   
0

A case-insensitive, const-friendly version in plain C that ignores non-alphanumeric characters (e.g. whitespace / punctuation). It therefore will actually pass on classics like "A man, a plan, a canal, Panama".

int ispalin(const char *b)
{
    const char *e = b;
    while (*++e);
    while (--e >= b)
    {
        if (isalnum(*e))
        {
            while (*b && !isalnum(*b)) ++b;
            if (toupper(*b++) != toupper(*e)) return 0;
        }
    }
    return 1;
}
0

The interviewer will be looking for some logic on how you will be approaching this problem: Please consider the following java code:

  1. always check if the input string is null
  2. check your base cases.
  3. format your string accordingly (remove anything that is not a character/digit
  4. Most likely they do not want to see if you know the reverse function, and a comparison, but rather if you are able to answer the question using a loop and indexing.
  5. shortcut return as soon as you know your answer and do not waste resources for nothing.

    public static boolean isPalindrome(String s) {

    if (s == null || s.length() == 0 || s.length() == 1)
        return false;
    
    String ss = s.toLowerCase().replaceAll("/[^a-z]/", "");
    
    for (int i = 0; i < ss.length()/2; i++) 
        if (ss.charAt(i) != ss.charAt(ss.length() - 1 - i))
            return false;
    return true;
    

    }

0

Java with stacks.

public class StackPalindrome {
    public boolean isPalindrome(String s) throws OverFlowException,EmptyStackException{
        boolean isPal=false;
        String pal="";
        char letter;
        if (s==" ")
            return true;
        else{   
            s=s.toLowerCase();
            for(int i=0;i<s.length();i++){

            letter=s.charAt(i);

            char[] alphabet={'a','b','c','d','e','f','g','h','i','j','k','l','m','n','o','p','q','r','s','t','u','v','w','x','y','z'};
            for(int j=0; j<alphabet.length;j++){
                /*removing punctuations*/
                if ((String.valueOf(letter)).equals(String.valueOf(alphabet[j]))){
                    pal +=letter;
                }

            }

        }
        int len=pal.length();
        char[] palArray=new char[len];
        for(int r=0;r<len;r++){
            palArray[r]=pal.charAt(r);
        }
        ArrayStack palStack=new ArrayStack(len);
        for(int k=0;k<palArray.length;k++){
            palStack.push(palArray[k]);
        }
        for (int i=0;i<len;i++){

            if ((palStack.topAndpop()).equals(palArray[i]))
                isPal=true;
            else 
                isPal=false;
        }
    return isPal;
    }
}
public static void main (String args[]) throws EmptyStackException,OverFlowException{

    StackPalindrome s=new StackPalindrome();
    System.out.println(s.isPalindrome("“Ma,” Jerome raps pot top, “Spare more jam!”"));
}
0
public static boolean isPalindrome(String str) {
    return str.equals(new StringBuilder(str).reverse().toString());
}

for versions of Java earlier than 1.5,

public static boolean isPalindrome(String str) {
    return str.equals(new StringBuffer().append(str).reverse().toString());
}

or

public static boolean istPalindrom(char[] word){
    int i1 = 0;
    int i2 = word.length - 1;
    while (i2 > i1) {
        if (word[i1] != word[i2]) {
            return false;
        }
        ++i1;
        --i2;
    }
    return true;
}
0
//Single program for Both String or Integer to check palindrome

//In java with out using string functions like reverse and equals method also and display matching characters also

package com.practice;

import java.util.Scanner;

public class Pallindrome {

        public static void main(String args[]) {
        Scanner sc=new Scanner(System.in);
        int i=0,j=0,k,count=0;
        String input,temp;
        System.out.println("Enter the String or Integer");
        input=sc.nextLine();
        temp=input;
        k=temp.length()-1;
        for(i=0;i<=input.length()-1;i++) {
            if(input.charAt(j)==temp.charAt(k)) {
                count++;
            }
            //For matching characters
            j++;
            k--;
        }
                System.out.println("Matching Characters = "+count);

        if(count==input.length()) {
            System.out.println("It's a pallindrome");
        }
        else {
            System.out.println("It's not a pallindrome");
        }

    }

}
0
// JavaScript Version.
function isPalindrome(str) { 
  str = str.replace(/[^a-zA-Z]/g, '')
  return str.split('').reverse().join('').toUpperCase() === str.toUpperCase()       
}

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