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I am trying to implement a simple merge sort algorithm. What I am very confusing is that I keep getting the following error message right after the "array2" is deleted.

" free(): invalid next size (fast) "

Please advise. Thank you very much!

#include <iostream>
#include <limits.h>

using namespace std;

void merge_sort(int*,int,int);

int main(){
  //cout << "Max int: " << INT_MAX <<endl;
  int n;
  cin >> n;
  int* array = new int(n+1);
  for (int i=1; i<=n; i++)
    cin >> array[i];
  merge_sort(array,1,n);
  cout << "--------------------------------------------" <<endl;
  for (int i=1; i<=n; i++)
    cout << array[i] <<endl;
}

void merge_sort(int* array,int p,int r){
  cout << p << ' ' << r <<endl;
  if (p == r)
    return;
  int q = int((p+r)/2);
  merge_sort(array,p,q);
  merge_sort(array,q+1,r);
  //(p..q)  and (q+1 .. r) sorted, then merge this two sorted array
  int n1 = q-p+1;
  int n2 = r-q;
  cout << "Mark1 " <<n1<<' '<<n2<<endl;
  int *array1;
  array1 = new int(n1+1);
  int *array2;
  array2 = new int(n2+1);
  for (int i=p; i<=q; i++)
    array1[i-p] = array[i];
  for (int i=q+1; i<=r; i++)
    array2[i-q-1] = array[i];
  array1[n1] = INT_MAX;
  array2[n2] = INT_MAX;  //CONSTANT, serve as sentinel

  int p1 = 0;
  int p2 = 0;
  cout << "Mark2" << endl;
  for (int i=p; i<=r; i++){
    if (array1[p1]<array2[p2]){
      array[i] = array1[p1];
      p1++;
    }else{
      array[i] = array2[p2];
      p2++;`enter code here`
    }
  }   
  cout << "Mark3" << endl;
  delete [] array2;
  cout << "Delete array2 " << endl;

  delete [] array1;
  cout << "Delete array1 " << endl;
}
share|improve this question
    
Declaring a pointer without assigning it to anything is UB, or Undefined Behaviour. –  Rapptz Jan 25 '13 at 3:26
    
@Rapptz no, accessing a pointer without having previously assigned to it or initialised it is UB. –  Seth Carnegie Jan 25 '13 at 3:31
    
@SethCarnegie thanks, I knew something about pointers without assigning anything to it was UB but I wasn't sure what. –  Rapptz Jan 25 '13 at 3:32
    
@Rapptz yeah, it's the same for any variable. –  Seth Carnegie Jan 25 '13 at 3:34
    
The immediate giveway is that you have calls to delete[] but not to new[]. –  David Schwartz Jan 25 '13 at 3:34

1 Answer 1

The syntax

new int(n+1)

Creates a single int on the free-store and initialises it with n+1, and right away you access it out of bounds with array[1]. You want brackets:

new int[n + 1]

Which will create an array. The same goes for every other place like that in the program.

Also, since you are starting your loop at 1, the object array[0] is uninitialised and you get undefined behaviour if you access it, which you do. This is wasting an array element for nothing and setting up traps for yourself, I recommend you don't add 1 to the array size and start your indices from 0.

share|improve this answer
    
almost there... but not quite. the issue is not from uninitialized array[0]. try again. –  thang Jan 25 '13 at 3:31
    
@thang the issue is the first thing I mentioned. –  Seth Carnegie Jan 25 '13 at 3:32
    
but why does he get that error...you're so close. i'll get rid of the -1 when you get it. –  thang Jan 25 '13 at 3:32
    
ok. that's better :p –  thang Jan 25 '13 at 3:33
    
so the issue actually is because he (assuming male) writes to memory that he hasn't allocated by running past the end of the array. this tramps over the heap's marker, and that's where the error comes from when he tries to free. –  thang Jan 25 '13 at 3:35

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