Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I get index out of bounds exception when i try to run this code .

we are using two different array s left and right for merging ..

and using recursive merge sort to divide the array into individaul elements and merging them...

Here's the algorithm from CLRS i am using :

    Merge(A, p, q, r)
    n1 ← q - p + 1
    n2 ← r - q
    create arrays L[1..n1 + 1] and R[1..n2 + 1]
    for i ← 1 to n1
    do L[i] ← A[p + i - 1]
    for j ← 1 to n2
      do R[j] ← A[q + j]
    L[n1 + 1] ← ∞
    L[n2 + 1] ← ∞
    i ← 1
    j ← 1
    for k ≤ p to r
        do if L[i] ≤ R[j]
          then A[k] ← L[i]
             i ← i + 1
          else A[k] ← R[j]
              j ← j + 1

     MergeSort(A, p, r)
     if p < r
      then q ← ⌊(p + r)/2⌋
       MergeSort(A, p, q)
       MergeSort(A, q + 1, r)
       Merge(A, p, q, r)

here's the code:

import java.util.Arrays;
import java.util.Scanner;

public class MergeSort {
   public static void main(String[] args) {
      Scanner input = new Scanner(System.in);
      System.out.println("Enter the size of array to be sorted");
      int size = input.nextInt();
      int[] A = new int[size];
      System.out.println("Enter the elements of array");
      for (int i = 0; i < A.length; i++) {
         A[i] = input.nextInt();
      }
      System.out.println("The UNSORTED array elements are" + Arrays.toString(A));
      int p = 0, r = size;
      mergeSort(A, p, r);
      System.out.println("The SORTED array elements are" + Arrays.toString(A));
   }

   public static void mergeSort(int[] A, int p, int r) {
      if (p < r) {
         int q = (p + r) / 2;
         mergeSort(A, p, q);
         mergeSort(A, q + 1, r);
         merge(A, p, q, r);
      }
   }

   public static void merge(int[] A, int p, int q, int r) {
      int n1 = q - p + 1;
      int n2 = r - q;
      int[] L = new int[n1 + 1];
      int[] R = new int[n2 + 1];
      L[n1] = Integer.MAX_VALUE;
      R[n2] = Integer.MAX_VALUE;
      for (int i = 0; i < n1; i++) {
         L[i] = A[p + i];
      }
      for (int j = 0; j < n2; j++) {
         R[j] = A[q + j + 1];
      }
      int x = 0, y = 0;
      for (int k = p; k < r; k++) {
         if (L[x] <= R[y]) {
            A[k] = L[x];
            x++;
         } else {
            A[k] = R[y];
            y++;
         }
      }
   }
}
share|improve this question
    
User println statements to check the state of variables just before the exception is thrown. In particular check the length of the array A, and the value of all the variables that combined make the index to the A array. –  Hovercraft Full Of Eels Oct 7 '11 at 22:21
3  
Possibly you could at least confide in us which line gets the exception, but just dumping your entire assignment here to be done by somebody else isn't likely to find much favor at SO, or anywhere else I can think of. There are plenty of working examples on the net. –  EJP Oct 7 '11 at 22:22
    
that is not an assignment ... i dont go to school . it's just small error that i couldnt notice ..as pointed out by @Gandalf –  jeff Oct 8 '11 at 12:51

2 Answers 2

up vote 4 down vote accepted

After a second but longer look, your implementation of the algorithm seems to be right, i got confused regarding your input parameters because they did not fit your zero based implementation. So maybe you do not want to call it like this:

int p = 0, r = size;
mergeSort(A, p, r);

but rather like this:

int p = 0, r = size - 1;
mergeSort(A, p, r);
share|improve this answer
    
thank you!...i didn't even notice that...again thanks.. –  jeff Oct 8 '11 at 12:49
    
@jeff you're welcome :) –  Gandalf Oct 8 '11 at 13:22

Just for the sake of completeness, and after the change that Gandalf suggested, in the merge() method the for loop should include the value of r, so by replacing

for (int k = p; k < r; k++) {

with

for (int k = p; k <= r; k++) {

your implementation sorts the array correctly.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.