1

Excuse the beginner level of this question. I have the following simple code, but it does not seem to run. It gets a segmentation fault. If I replace the pointer with a simple call to the actual variable, it runs fine... I'm not sure why.

struct node
{
 int x;
 struct node *left;
 struct node *right;
};

int main()
{
 struct node *root;
 root->x = 42;
 printf("Hello world. %d", root->x);
 getchar();
 return 0;
}

What is wrong with this code?

10
struct node *root;
root->x = 42;

You're dereferencing an uninitialized pointer. To allocate storage for the node:

struct node *root = malloc(sizeof(struct node));

You could also allocate a node on the stack:

struct node root;
root.x = 42;
  • So I should prefix it with some kind of initialization? struct node *root = new (struct node); or something? – socks Dec 21 '10 at 22:46
  • 1
    In this particular case I would declare a struct node root rather than a pointer and then use root.x and pass &root to functions that expect a pointer. Not always is dynamic storage justified. – Blagovest Buyukliev Dec 21 '10 at 22:50
1

In order to use a pointer to access something, the pointer must be pointing at that something. In order for the pointer to be pointing at that something, that something must exist. Creating a pointer does not create anything for it to point at. You must do so explicitly, either by dynamic allocation (malloc()), stack allocation (i.e. a local variable) or by pointing to something that already exists (e.g. a static instance, such as a global; a value that was passed in as a parameter; etc.).

-1

After struct node *root; line add the

root = (sturct node*) malloc(sizeof(struct node));

Also, before Return 0 line add the

free(root);

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