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I am a little puzzled by this C behaviour. If I initialize the "head" pointer after the node it seems that it does not continue holding on to the next elements. Sample code below:

#include <stdio.h>
#include <stdlib.h>


typedef struct node {
    int value;
    struct node* next;
} node;

int main(void)
{
    node* head = NULL;
    node* current = malloc(sizeof(node));
    current->value = 1;

    if(head == NULL)
        head = current;

    current = current->next;

    current = malloc(sizeof(node));
    current->value = 2;

    printf("%d\n", current->value); // 2
    printf("%d\n", head->value); // 1
    printf("%d\n", head->next->value); //Segmentation fault: 11, Should be 2

    return 0;

}

As far as I understand: I malloc() memory for current, then set the value. Then set head equal to current. They now both point to the same node.

Then I make current = current->next, malloc memory and set the value.

Why does head->next->value not point to the same place as current->value?

  • 2
    You never set next, anywhere. Not in current, not in head. Its value is undefined, quite likely zero. So you cannot attempt to dereference it. – Tom Karzes Oct 1 '17 at 1:33
  • 1
    'current = current->next;current = malloc(sizeof(node));' look at those two statements - one must be incorrect, since the second overwrites the value loaded by the first. – Martin James Oct 1 '17 at 1:34
  • @TomKarzes Do I not set 'next' after I make 'current = current->next' and then malloc it memory? At this point, shouldn't 'current->next' and 'head->next' be the same thing? – teafellow Oct 1 '17 at 1:47
  • @MartinJames current is a pointer though, so setting current = current->next makes current point to where current->next was pointing. After that I allocate the memory, so nothing get's overwritten. – teafellow Oct 1 '17 at 1:54
  • @teafellow when you use malloc it's going to choose the pointer's location and return it to the variable. It's not going to create memory at the location your pointer currently is. That would require knowing where the memory was available beforehand. – twain249 Oct 1 '17 at 1:57
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This does not do what you think it does:

current = current->next;

Prior to this statement, you have this:

             ---------------
current ---> |   1  |   ?  |
             ---------------

current points to an area of memory big enough for a node where the value of value is 1 and the value of next is unknown since malloc returns uninitialized memory.

After this statement, current contains the garbage value that current->next contained. When you then do this:

current = malloc(sizeof(node));

You change the value of current to whatever malloc returned, overwriting the prior value.

To do what you intended, you would need to do this:

current->next = malloc(sizeof(node));
current = current->next;
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To create 2 nodes that are linked you need to save the first's next to the second node.

Change

current = current->next;

current = malloc(sizeof(node));
current->value = 2;

To

current = malloc(sizeof(node));
current->value = 2;
head->next = current;

That will create a new node (reusing the current pointer you've already assigned to head) and attach it to head.

In practice though you probably don't want to attach it to head like this as it won't work as written beyond 2. You want to create a new entry at the end of the list, the beginning of the list, or insert it in the middle of the list.

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