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I've looked long and hard on this site for the answer to this question, but still can't seem to achieve my goal. The code compiles and works fine without the assignment statement I'm trying to add. The fact that everything is a pointer in this code is confusing the heck out of me but I can't change that, its not my code. I basically just want to override all the values of x_array (only in the first index of bs)to be the values stored in y_array. Here is the program structure:

typedef struct
{
  double *x_array;
} b_struct;
typedef struct
{
  b_struct *bs;
} a_struct;

void fun_1(a_struct *as);
void allocate_b(b_struct *bs);
void allocate_a(a_struct *as);
int main
{
  a_struct *as
  as = (a_struct *)malloc(sizeof(a_struct));
  allocate_a (as);
  fun_1 (as);
  // everything internal to sa is deallocated in separate functions
  free (as);
  return (0);
}
void allocate_a(a_struct *as)
}
   int i;

   if ((as->bs =(b_struct *)malloc(5*sizeof(b_struct))) == NULL)
   {
     printf("Error: Not enough memory!\n");
     exit(1);
   }
     for(i=0;i<5;i++) allocate_b (&(as->bs[i]));
  return;
}
void allocate_b(b_struct *bs)
{
  if ((bs->x_array =(double *)malloc(10*sizeof(double))) == NULL)
    {
      printf("Error: Not enough memory!\n");
      exit(1);
    }
  return;
}

void fun_1(a_struct *as)
{
  int i;
  double y_array[10]; // the values i need are read into this array
  // the following line is what will not compile
  for (i=0; i<10; i++) as->bs[0]->x_array[i]=y_array[i];
  return;
}  

I have tried many permutations of adding & and *() but every time I get:

error: expression must have pointer type  

The code is very long and complex and I tried to just parse out what was pertinent to my specific question. I tried to make it a complete program, but I'm sorry if I botched some syntax. Hopefully, this is enough to understand what needs to happen for the assignment statement to work. Could someone please explain how to access each layer of these nested pointer structs and pointer arrays?

share|improve this question
    
a_struct doesn't have an sb member. Is that a typo? –  Johnny Mopp Sep 13 '12 at 18:56
    
I'm glad this isn't YOUR code, because man it's ugly. –  Wug Sep 13 '12 at 18:57
    
in this code even the main() function is written in worst possible way, it's also placed in a random position inside the body of your source code; maybe a general rethink of this would be a good thing ... –  Ken Sep 13 '12 at 18:58
    
There is a bug in your code in allocate_a. The if statement should close after the exit(1). You could be having trouble because allocate_b never runs. (main also has syntax errors...) –  Digikata Sep 13 '12 at 19:03
    
yeah, typos, sorry, sb should be bs –  SPMcGee Sep 13 '12 at 19:13

1 Answer 1

up vote 2 down vote accepted
for (i=0; i<10; i++) as->bs[0]->x_array[i]=y_array[i];

In your code bs[0] is not a pointer, it's a b_struct. Change that line to:

for (i=0; i<10; i++)
    as->bs[0].x_array[i]=y_array[i];
            ^^^
share|improve this answer
    
Thank you so much; It compiled! However, I do not understand why bs is not a pointer. Isn't in declared as one inside the typedef for a_struct? –  SPMcGee Sep 13 '12 at 19:19
    
@SPMcGee bs is a pointer. It's bs[0] that's not a pointer. That's how the [] operator works :-) –  cnicutar Sep 13 '12 at 19:20
    
Ooohhh, I see! Is it because bs[0] is equivalent to *(bs + 0) which is dereferenced? –  SPMcGee Sep 13 '12 at 19:26
    
@SPMcGee That's one way of putting it. –  cnicutar Sep 13 '12 at 19:28
    
thanks for answering my question. Sorry for the ugly code –  SPMcGee Sep 13 '12 at 19:38

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