I am getting this error when I enter the String "s" after entring an integer.

Exception in thread "main" java.lang.StringIndexOutOfBoundsException: String index out of range: 0
    at java.lang.String.charAt(Unknown Source)
    at oneB.change(oneB.java:4)
    at oneB.main(oneB.java:26)

Following is the code: (Please note that the code is still complete and I have entered some print statements for checking)

import java.util.Scanner;
public class oneB {
    public static String change(int n, String s, String t) {

        if (s.charAt(0) == 'R') {
            return onetwo(s);
        }
        return s;
    }
    private static String onetwo(String one) {
        int c = one.indexOf('C');
        System.out.print(c);
        char[] columnarray = new char[one.length() - c - 1];
        for (int i = c + 1; i < one.length(); i++) {
            columnarray[i] = one.charAt(i);
        }
        int columnno = Integer.parseInt(new String(columnarray));
        System.out.print(columnno);
        return one;

    }
    public static void main(String[] args) {
        Scanner in = new Scanner(System. in );
        int n = in .nextInt();
        String s = in .nextLine();
        String t = in .nextLine();
        System.out.print(change(n, s, t));
    }

}
up vote 6 down vote accepted

The call in.nextInt() leaves the endline character in the stream, so the following call to in.nextLine() results in an empty string. Then you pass an empty string to a function that references its first character and thus you get the exception.

  • Being a beginner, I barely understood what you are saying. could you suggest the edit in my code which would make it run? – AmanArora Sep 20 '13 at 12:49
  • 1
    Add one more in.nextLine() immediately after the line n = in.nextInt(); – Piotr Kołaczkowski Sep 20 '13 at 12:52
  • 1
    And you should also protect your change() method from receiving an empty string - so the condition should be if (!s.isEmpty() && s.charAt(0) == 'R') – Piotr Kołaczkowski Sep 20 '13 at 12:53

Here's how I debugged it:

  • You are getting a StringIndexOutOfBoundsException with index zero at line 4.

  • That means that the String you are operating on when you call s.charAt(0) is the empty String.

  • That means that s = in.nextLine() is setting s to an empty String.

How can that be? Well, what is happening is that the previous nextInt() call read an integer, but it left the characters after the integer unconsumed. So your nextLine() is reading the remainder of the line (up to the end-of-line), removing the newline, and giving you the rest ... which is an empty String.

Add an extra in.readLine() call before you attempt to read the line into s.

  • Where do I add the extra in.readLine() call in my code? – AmanArora Sep 20 '13 at 12:50
  • Like I said - "... before you attempt to read the line into s". – Stephen C Sep 20 '13 at 12:51

One another solution to the problem would be instead of nextLine(), use just next().

        int n = in .nextInt();
        String s = in .next();

It looks like s is an empty String "".

   for (int i = c + 1; i < one.length(); i++) {
        columnarray[i] = one.charAt(i);   // problem is here.
    }

You need to start array index from 0. But you are starting from c + 1

    for (int i = c + 1,j=0; i < one.length(); i++,j++) {
        columnarray[j] = one.charAt(i);
     }

The problem is that when you hit enter, your int is followed by a '\n' character. Just modify the code like this :

public static void main(String[] args) {
    Scanner in = new Scanner(System. in );
    int n = in .nextInt();
    in.nextLine(); //This line consume the /n afer nextInt
    String s = in .nextLine();
    String t = in .nextLine();
    System.out.print(change(n, s, t));
}

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