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I am trying to create a Palindrome program using recursion within Java but I am stuck, this is what I have so far:

 public static void main (String[] args){
 System.out.println(isPalindrome("noon"));
 System.out.println(isPalindrome("Madam I'm Adam"));
 System.out.println(isPalindrome("A man, a plan, a canal, Panama"));
 System.out.println(isPalindrome("A Toyota"));
 System.out.println(isPalindrome("Not a Palindrome"));
 System.out.println(isPalindrome("asdfghfdsa"));
}

public static boolean isPalindrome(String in){
 if(in.equals(" ") || in.length() == 1 ) return true;
 in= in.toUpperCase();
 if(Character.isLetter(in.charAt(0))
}

public static boolean isPalindromeHelper(String in){
 if(in.equals("") || in.length()==1){
  return true;
  }
 }
}

Can anyone supply a solution to my problem?

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1  
Eww.. 1-space indent. That's like not indenting at all. Better use 2, 4 or 8 spaces (or tabs) to indent. Oh, and please use the "format code" button next time so it's displayed properly. –  ThiefMaster Dec 6 '10 at 14:17
    
And where is the recursion here? –  Roman Dec 6 '10 at 14:18
    
homework tag is missing –  Jigar Joshi Dec 6 '10 at 14:20
1  
Many duplicates or near-duplicates from a SO search for palindrome: stackoverflow.com/search?q=palindrome –  Paul Dec 6 '10 at 14:22
    
First paste your code, then select it and then use the Code Sample button. –  Peter Lang Dec 6 '10 at 14:24

13 Answers 13

up vote 14 down vote accepted

Here I am pasting code for you:

But, I would strongly suggest you to know how it works,

from your question , you are totally unreadable.

Try understanding this code. Read the comments from code

import java.util.Scanner;
public class Palindromes
{

    public static boolean isPal(String s)
    {
        if(s.length() == 0 || s.length() == 1)
            // if length =0 OR 1 then it is
            return true; 
        if(s.charAt(0) == s.charAt(s.length()-1))
            // check for first and last char of String:
            // if they are same then do the same thing for a substring
            // with first and last char removed. and carry on this
            // until you string completes or condition fails
            return isPal(s.substring(1, s.length()-1));

        // if its not the case than string is not.
        return false;
    }

    public static void main(String[]args)
    {
        Scanner sc = new Scanner(System.in);
        System.out.println("type a word to check if its a palindrome or not");
        String x = sc.nextLine();
        if(isPal(x))
            System.out.println(x + " is a palindrome");
        else
            System.out.println(x + " is not a palindrome");
    }
}
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2  
WOw this is literally the first time I have used this website and I actually get quick responses. Thank you everyone. –  Nightshifterx Dec 6 '10 at 14:32
    
@Nightshifterx , If you are using it first time than I would suggest you to accept answer concept, you should accept answer that you find most helpful –  Jigar Joshi Dec 6 '10 at 14:34
    
org, I implemented your boolean method into my code and edited it and ran it, however only "noon" returned as a true palindrome, but wouldn't "madam I'm Adam" or "asdfghfdsa" also return true? they both returned false. –  Nightshifterx Dec 6 '10 at 14:39
1  
@Nightshifterx Because these both aren't palindrome –  Jigar Joshi Dec 6 '10 at 14:44
    
Ahhhh ok I just reread the def of a true Palindrome thanks for the help. How do I do the "accept answer concept" that you speak of? –  Nightshifterx Dec 6 '10 at 14:48

Well:

  • It's not clear why you've got two methods with the same signature. What are they meant to accomplish?
  • In the first method, why are you testing for testing for a single space or any single character?
  • You might want to consider generalizing your termination condition to "if the length is less than two"
  • Consider how you want to recurse. One option:
    • Check that the first letter is equal to the last letter. If not, return false
    • Now take a substring to effectively remove the first and last letters, and recurse
  • Is this meant to be an exercise in recursion? That's certainly one way of doing it, but it's far from the only way.

I'm not going to spell it out any more clearly than that for the moment, because I suspect this is homework - indeed some may consider the help above as too much (I'm certainly slightly hesitant myself). If you have any problems with the above hints, update your question to show how far you've got.

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OK thanks, first off to make things more clear how does the implementation of the code format work? I hit the code button and it says –  Nightshifterx Dec 6 '10 at 14:22
    
"enter code here" I copy paste my code there and only the first line gets coded. –  Nightshifterx Dec 6 '10 at 14:22
    
SOrry I missed what you said this is not Homework, this is actually a past lab from my college java class, there isnt always enough time to finish it, now I am slightly behind and sitting in the library trying to get it done. –  Nightshifterx Dec 6 '10 at 14:23
1  
@Nightshifterx: That sounds like homework to me :) As for code formatting, paste the code, then select it and press the button (or Ctrl-K). –  Jon Skeet Dec 6 '10 at 14:30
    
@Nightshifterx: code formatting alternative: just indent each code line by additional 4 spaces (what Ctrl-K does) –  Carlos Heuberger Dec 7 '10 at 12:06
public static boolean isPalindrome(String in){
   if(in.equals(" ") || in.length() < 2 ) return true;
   if(in.charAt(0).equalsIgnoreCase(in.charAt(in.length-1))
      return isPalindrome(in.substring(1,in.length-2));
   else
      return false;
 }

Maybe you need something like this. Not tested, I'm not sure about string indexes, but it's a start point.

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1  
Why do you need in.equals(" ")? (In that case the length is < 2 anyway.) –  aioobe Dec 6 '10 at 15:19
    
I kept in.equals(" ") because it was his reasoning (see code in question). Effectively useless, but he asked about the use of recursive method. –  mauretto Dec 7 '10 at 7:46

I think, recursion isn't the best way to solve this problem, but one recursive way I see here is shown below:

String str = prepareString(originalString); //make upper case, remove some characters 
isPalindrome(str);

public boolean isPalindrome(String str) {
   return str.length() == 1 || isPalindrome(str, 0);
}

private boolean isPalindrome(String str, int i) {
       if (i > str.length / 2) {
      return true;
   }
   if (!str.charAt(i).equals(str.charAt(str.length() - 1 - i))) {
      return false;
   }
   return isPalindrome(str, i+1);
}
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Here is my go at it:

public class Test {

    public static boolean isPalindrome(String s) {
        return s.length() <= 1 ||
            (s.charAt(0) == s.charAt(s.length() - 1) &&
             isPalindrome(s.substring(1, s.length() - 1)));
    }


    public static boolean isPalindromeForgiving(String s) {
        return isPalindrome(s.toLowerCase().replaceAll("[\\s\\pP]", ""));
    }


    public static void main(String[] args) {

        // True (odd length)
        System.out.println(isPalindrome("asdfghgfdsa"));

        // True (even length)
        System.out.println(isPalindrome("asdfggfdsa"));

        // False
        System.out.println(isPalindrome("not palindrome"));

        // True (but very forgiving :)
        System.out.println(isPalindromeForgiving("madam I'm Adam"));
    }
}
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public class palin
{ 
    static boolean isPalin(String s, int i, int j)
    {
        boolean b=true;
        if(s.charAt(i)==s.charAt(j))
        {
            if(i<=j)
                isPalin(s,(i+1),(j-1));
        }
        else
        {
            b=false;
        }
        return b;
    }
    public static void main()
    {
        String s1="madam";
        if(isPalin(s1, 0, s1.length()-1)==true)
            System.out.println(s1+" is palindrome");
        else
            System.out.println(s1+" is not palindrome");
    }
}
share|improve this answer

Here are three simple implementations, first the oneliner:

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

This is ofcourse quite slow since it creates a stringbuffer and reverses it, and the whole string is always checked nomatter if it is a palindrome or not, so here is an implementation that only checks the required amount of chars and does it in place, so no extra stringBuffers:

public static boolean isPalindrome(String str){

    if(str.isEmpty()) return true;

    int last = str.length() - 1;        

    for(int i = 0; i <= last / 2;i++)
        if(str.charAt(i) != str.charAt(last - i))
            return false;

    return true;
}

And recursively:

public static boolean recursivePalin(String str){
    return check(str, 0, str.length() - 1);
}

private static boolean check (String str,int start,int stop){
    return stop - start < 2 ||
           str.charAt(start) == str.charAt(stop) &&
           check(str, start + 1, stop - 1);
}
share|improve this answer
public static boolean isPalindrome(String str)
{
    int len = str.length();
    int i, j;
    j = len - 1;
    for (i = 0; i <= (len - 1)/2; i++)
    {
      if (str.charAt(i) != str.charAt(j))
      return false;
      j--;
    }
    return true;
} 
share|improve this answer
1  
Welcome to stackoverflow. This thread is a few years old. Best not to resurrect ancient threads unless the response contributes a significant improvement over the previous answers. –  Leigh Apr 10 '12 at 15:20

Try this:

package javaapplicationtest;

public class Main {

    public static void main(String[] args) {

        String source = "mango";
        boolean isPalindrome = true;

        //looping through the string and checking char by char from reverse
        for(int loop = 0; loop < source.length(); loop++){          
            if( source.charAt(loop) != source.charAt(source.length()-loop-1)){
                isPalindrome = false;
                break;
            }
        }

         if(isPalindrome == false){
             System.out.println("Not a palindrome");
         }
         else
             System.out.println("Pailndrome");

    }

}
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String source = "liril";
StringBuffer sb = new StringBuffer(source);
String r = sb.reverse().toString();
if (source.equals(r)) {
    System.out.println("Palindrome ...");
} else {
    System.out.println("Not a palindrome...");
}
share|improve this answer
public class chkPalindrome{

public static String isPalindrome(String pal){

if(pal.length() == 1){

return pal;
}
else{

String tmp= "";

tmp = tmp + pal.charAt(pal.length()-1)+isPalindrome(pal.substring(0,pal.length()-1));

return tmp;
}


}
     public static void main(String []args){

         chkPalindrome hwObj = new chkPalindrome();
         String palind = "MADAM";

       String retVal= hwObj.isPalindrome(palind);
      if(retVal.equals(palind))
       System.out.println(palind+" is Palindrome");
       else
       System.out.println(palind+" is Not Palindrome");
     }
}
share|improve this answer
    
Welcome to SO, answers should provide an explanation of what you are doing/why you have implemented it in such a way. –  Aboutblank Jun 17 '13 at 13:32

Here is a recursive method that will ignore specified characters:

public static boolean isPal(String rest, String ignore) {
    int rLen = rest.length();
    if (rLen < 2)
        return true;
    char first = rest.charAt(0)
    char last = rest.charAt(rLen-1);
    boolean skip = ignore.indexOf(first) != -1 || ignore.indexOf(last) != -1;
    return skip || first == last && isPal(rest.substring(1, rLen-1), ignore);
}

Use it like this:

isPal("Madam I'm Adam".toLowerCase(), " ,'");
isPal("A man, a plan, a canal, Panama".toLowerCase(), " ,'");

It does not make sense to include case insensitivity in the recursive method since it only needs to be done once, unless you are not allowed to use the .toLowerCase() method.

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there's no code smaller than this:

public static boolean palindrome(String x){
    return (x.charAt(0) == x.charAt(x.length()-1)) && 
        (x.length()<4 || palindrome(x.substring(1, x.length()-1)));
}

if you want to check something:

public static boolean palindrome(String x){
    if(x==null || x.length()==0){
        throw new IllegalArgumentException("Not a valid string.");
    }
    return (x.charAt(0) == x.charAt(x.length()-1)) && 
        (x.length()<4 || palindrome(x.substring(1, x.length()-1)));
}

LOL B-]

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