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I dont understand the cause of the segmentation fault here. The code is:

struct node {
    int data;
    struct node* next;
};

void add(int a,struct node *lista)
{
    struct node *p;
    p=(struct node*)malloc(sizeof(struct node*));

    p->data=a;
    p->next=NULL;

    while(lista->next!=NULL)       <--- The segmentation fault is here. 
        lista=lista->next;                    
    lista->next=p;

    return lista;

}

int main(void)
{
    struct node *list=NULL;
    list_print(list);

    list=node123();
    list_print(list);

    add(7, &list);
    list_print(list);

    return 0;
}

the add function which adds a new node to the end of the list worked perfectly like this on a friends computer and setup. I get segmentation fault. i think the problem is the lista->next expression but I don't understand why. Any ideas?

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Did you use a debugger like gdb on Linux? Did you initialize all fields and local variables? Did you asked the compiler for all warnings and debugging info (e.g. compile with gcc -Wall -Wextra -g on Linux)? –  Basile Starynkevitch Sep 5 '12 at 11:43
2  
What's node123? –  Luchian Grigore Sep 5 '12 at 11:43
1  
@BasileStarynkevitch that's easy... no. :D –  Luchian Grigore Sep 5 '12 at 11:44
    
ahh sorry after posting it i just found the problem.... –  user1648856 Sep 5 '12 at 11:46
    
You didn't include the code for node123 which could be the source of the error. –  n.m. Sep 5 '12 at 11:46
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5 Answers

void add(int a,struct node *lista)... 2nd parameter is a struct node pointer.

struct node *list=NULL; -- list is a struct node pointer.

add(7, &list); -- &list is a struct node **; this is incorrect and likely to cause add()'s `while(lista->next!=NULL) to fail its dereference.

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+1 the only relevant answer (while others are true they do not answer the question) –  giorashc Sep 5 '12 at 11:47
    
yes that was the problem. –  user1648856 Sep 5 '12 at 11:50
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p = (struct node*)malloc(sizeof(struct node*));

This is certainly wrong. You must not allocate memory sized as the pointer itself, but as big as the actual structure. Use

p = malloc(sizeof(struct node));

or even better

p = malloc(sizeof(*p));

And don't for the love of God cast the return value of malloc().

Also, you declare list as struct node *, and your add() function also expects a struct node * - so it's erronous to pass its address to the function. Instead of

add(7, &list);

write

add(7, list);
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Why the hint of not casting malloc returned value? I'll suggest to always cast it.... –  Basile Starynkevitch Sep 5 '12 at 12:24
    
@BasileStarynkevitch because this is not C++. Haven't you read the SO question and answer behind that link? –  user529758 Sep 5 '12 at 12:56
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You're passing the address of list, but the funciton takes only a pointer, in order to pass 'list' by reference, You've got to chagne the decliration of add to:

void add(int a,struct node **lista);

and then use (*lista) instead of just 'list' . ex: (*lista)->next ...

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You declared 'add' to not return any type of data (void). but you're returning 'list'. either make the function work on a pointer to a pointer to 'list' (taking **list as a parameter instead of *list). or make it return a list type: struct list* add(

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1 - you have to check if lista is not null before writhin lista->next

2 - There is an error in the malloc : p=(struct node*)malloc(sizeof(struct node));

the size to allocate is the size of a node, you allocated the size of a pointer struct node*.

3 - add(7 , lista) not add(7 , &lista) because lista is already a pointer.

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