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We're trying to set the address of a struct to an address we are given but when we print out the address of the struct it seems to not be the same value as the address we are given.

/*a struct to keep block information*/
struct header{
    int space;
    int free; /* 1 = free space and 0 = full*/
    struct header *nextHead;
    struct header *prevHead;
};

typedef struct header node;

int myinit(int *array, int size){

    int newSize = size;
    node * nullPointer;
    nullPointer = NULL; //make intermediatry node pointer for some bullshit reason

    * (array) = newSize;  /*store the size of the malloc at the first address*/

    printf("Address : %p\n", &array[0]);
    array++;
    printf("Address  after: %p\n", &array[0]);

    /*initial block*/
    node *root = (node *)&array; /*store the root at the next address available*/
    printf("size of struct %lu\n", sizeof(struct header));

    printf("%p\n", root);

    root->space = newSize;
    root->free = 1;
    root->nextHead = nullPointer;
    root->prevHead = nullPointer;


}
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Code looks fine at first glance, where's the problem ? –  DarkDust Nov 19 '10 at 13:32

3 Answers 3

up vote 2 down vote accepted

In the line

node *root = (node *)&array;

You're taking the address of "array" local variable. IOW, you take the address of value that's on the stack, not what you are expecting. You have to modify the function's signature like this:

int mymain(int **myarray, int size);

and modify its definition accordingly. Then, you can write:

node *root = (node *)array;
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1  
Good answer, but I would add that the function definition should be using a node** instead of an int**. Also, I have no idea why someone would store linked list nodes in an array in the first place, or why newSize is being stored in two different places. Probably the interface requirements are not properly understood here. –  Karl Bielefeldt Nov 19 '10 at 13:57
node *root = (node *)&array; 

Here you obtain address of a pointer and cast it to other pointer. You should not do this. Here you must allocate the memory for the node:

 node * root = (node *) malloc(sizeof(node));
// or  this allocates the memory and puts zeros to it     
node * root = (node *) calloc(1, sizeof(node)); 

Also, you don't need any nodes which points to NULL, you can simply use NULL like this:

node->nextHeader = NULL;
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in my code i am rewriting malloc so i cannot use any implicit calls to malloc, can you see another way to create the struct and be able to set the values within it. By setting the values to NULL directly we couldn't compile, we had to create an intermediary value to set it to. –  Alex Nov 19 '10 at 14:22
    
what compile error you get? updated the answer with another way allocating the memory –  Vladimir Ivanov Nov 19 '10 at 14:33

Also, instead of using &array[0], use array in this piece of code.
You will become less confused with pointers if you keep to simple code and understand every line you write. When you have a lot of ampersands and special signs in one line you're probably doing something wrong, train your spider sense for those situations.

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