-1

I just realized my mistake.

Instead of writing

test1 = do.substring(x, x + 1);
test2 = do.substring(count - 1 - x, count - x);

I wrote

test1 = do.substring(x, x + 1);
test1 = do.substring(count - 1 - x);

I was not aware that you had to "end" a substring, I used this answer. Considering the upvotes it has, I was wondering if someone could explain why it didn't work in my case. How do I get the last character of a string?

10
  • Update: I made it so that the loop would print match/nomatch for each character. I see that the first loop matches, but for the 2nd and 3rd characters there is no match. I used the input "pop".
    – om242515
    Nov 18, 2020 at 17:43
  • This is what I got : pop match. nomatch. nomatch. This is not a palindrome.
    – om242515
    Nov 18, 2020 at 17:44
  • Not sure if you're allowed to use it, but you could split the input in half and then use StringBuilder to reverse it and see if they're equal. Just need to be mindful of odd length Strings when splitting.
    – Tim Hunter
    Nov 18, 2020 at 17:46
  • I will definitely try to learn more about stringbuilder for personal use, but this is sadly a HS compsci course that's taught for a single exam
    – om242515
    Nov 18, 2020 at 17:48
  • You able to use toCharArray?
    – Tim Hunter
    Nov 18, 2020 at 17:49

3 Answers 3

0

I think you don't need to iterate over string when using substrings. You can simply compare left substring with reversed right substring like this:

private static boolean isPalindrome(final String input) {
    int length = input.length();
    int middleIndex = (length % 2 == 0 ) ?
            (length / 2 ) : (length / 2 + 1);
    String left = input.substring(0, length / 2);
    String right = input.substring(middleIndex, length);

    // Compare left string with reverse(right)
    return left.equals(new StringBuilder(right).reverse().toString());
}
0
0

try to convert your string to an charArray and then define to indexed one from start of array other from end of array and compare them with each other: if they are always the same then its a Palindrome else its not.

String input = "POP";
char [] values = input.toCharArray();
boolean isPalindrome = true;

for (int i = 0, j = values.length-1; i < values.length /2 && j >= values.length/2; i++, j--) {
    if(values[i] != values[j]) {
        isPalindrome = false;
        break;
    }
}
if(isPalindrome) {
    System.out.println(input + " is a Palindrom");
} else {
    System.out.println(input + " is not a Palindrom");
}
0
0

Quoted below is the description of String#substring(int beginIndex, int endIndex):

Returns a new string that is a substring of this string. The substring begins at the specified beginIndex and extends to the character at index endIndex - 1. Thus the length of the substring is endIndex-beginIndex.

Thus, in order to get a string of just one character using String#substring(int beginIndex, int endIndex), the value of endIndex needs to be equal to beginIndex + 1 e.g. "Hello".substring(1, 2) is equivalent to String.valueOf("Hello".charAt(1)).

Demo:

public class Main {
    public static void main(String[] args) {
        // Test strings
        String[] arr = { "dad", "malayalam", "papa" };
        for (String s : arr) {
            System.out.println(isPallindrome(s));
        }
    }

    static boolean isPallindrome(String s) {
        int len = s.length();
        for (int i = 0; i < len / 2; i++) {
            if (!s.substring(i, i + 1).equals(s.substring(len - i - 1, len - i))) {
                return false;
            }
        }
        return true;
    }
}

Output:

true
true
false

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