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I have this code which returns the address of a dynamic array by pointer .. but how can I return the address of a dynamic array by reference ? thank you..

int* e(int a[][2],int rows)
{
    int *p;

    p=new int[2];

    int max,min;

    max=min=a[0][0];

    int i,j;
    for(i=0;i<rows;i++)
    {
        for(j=0;j<2;j++)
        {
            if(min>a[i][j])
                min=a[i][j];
            else if(max<a[i][j])
                max=a[i][j];
            else;
        }
    }

    p[0]=min;
    p[1]=max;
    delete []p;
    return p;
}
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4  
Use std::vector<int> instead of new int[] and suddenly all of your problems are solved. –  user142019 Feb 26 '13 at 15:59
    
"but how can I return the address of a dynamic array by reference" Why do you want to do that? –  GManNickG Feb 26 '13 at 16:04
    
@GManNickG I have this homework you know :) –  Programmer Feb 26 '13 at 16:06
1  
You cannot return p by reference as using the returned pointer would be UB so if your teacher wants you to do that, he's a bad teacher (you'd need to dynamically allocate a pointer to the array and return that by reference). –  user142019 Feb 26 '13 at 16:07
    
Also just use std::vector and return that by value, really. See klmr.me/slides/modern-cpp. –  user142019 Feb 26 '13 at 16:08

1 Answer 1

"Return(ing) the address of a dynamic array by reference" in this case would come down to returning p by reference, but p is a local variable, so the memory would get freed when the function exits, so that won't work.

If you really want to, this should work: (but I strongly doubt that this is what you're supposed to do, and would probably lead to a memory leak)

int* &e(int a[][2],int rows)
{
  int **p = new int*;
  *p = new int[2];
  ...
  return *p;
}

Note that this doesn't make sense:

delete []p;
return p;

You're freeing the memory, then returning a pointer to it.

Just remove the delete and everything should be fine (or at least closer to fine).

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