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I need help with the following code about linked lists:

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

struct nodo {
    int d;
    struct nodo *next;
};

struct nodo *full();

int main()
{
    struct nodo *l;
    /* l=(struct nodo *)malloc(sizeof(struct nodo)); */
    l = full();
    while(l!=NULL) {
        printf("-->%d\n", l->d);
        l  =l->next;
    }
    system("PAUSE");
}
struct nodo *full()
{
    int i;
    struct nodo *head, *nes;
    head = (struct nodo *)malloc(sizeof(struct nodo));
    head->next = NULL;
    for(i = 1; i < 5; i++) {
        nes = (struct nodo *)malloc(sizeof(struct nodo));
        printf("Insert the %d element:\n", i);
        scanf("%d", &nes->d);
        nes->next = head;
        head = nes;
    }
    return head;
}

If I try for example to input 1, 2, 3, 4, I get the following output:

 -->4
 -->3
 -->2
 -->1
 -->9708864

Why do I get the last number? What's wrong with my code?

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3  
Is this homework? Also: 1. no need to cast the result of malloc, 2. no need to malloc before calling full(), 3. You're not calling free()... –  Eitan T Jul 13 '12 at 12:04
    
@EitanT of course it is; if it wasn't, OP wouldn't have dared to cast the return value of malloc(). –  user529758 Jul 13 '12 at 12:06
    
@EitanT I always cast the result of malloc because yes,it is an homework and plus if I don't cast,my compiler returns this error: invalid conversion from void*' to nodo*' Where should i call free? –  gyosko Jul 13 '12 at 12:10
    
@wild91 what kind of crappy C compiler is yours? void * must be implicitly compatible with any pointer type. –  user529758 Jul 13 '12 at 12:11
1  
@wild91 Maybe you're compiling with a C++ compiler? void* doesn't need to be cast to another pointer. Also, I've taken the liberty to format your code. Next time tag it as [tag: homework]. –  Eitan T Jul 13 '12 at 12:14

2 Answers 2

up vote 3 down vote accepted

As @Vinska pointed out in the comments, line 3 of full() is not necessary; it is creating an extra node.

The line in question is

head = (struct nodo *)malloc(sizeof(struct nodo));

Instead, say

head = NULL

With your existing code, your linked list has 5 elements. The first one is created on the aforementioned line. The remaining four items are created in the loop, as expected, for a total of 5 elements.

The 9708864 number is a garbage value. It is whatever happened to be in memory when you called malloc(). This is why you have to initialize all of your variables! Or, in this case, use memset() or calloc() to set those blocks to some sane value. (However, that line is completely superfluous here anyway.)

Good luck!

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Perfectly working now,thanks! –  gyosko Jul 13 '12 at 16:02

In your code, I do not see that you are preserving the start of the linked list. I would do this:

struct nodo *full()
{
    int i;
    struct nodo *head, *nes;
    head = (struct nodo *)malloc(sizeof(struct nodo));
    nes = head;

    for(i = 1; i < 5; i++) {
        nes->next = (struct nodo *)malloc(sizeof(struct nodo));
        printf("Insert the %d element:", i);
        scanf("%d", &nes->d);
        printf("%s","\n");
        nes = nes->next;
    }
    return head;
}

This creates the head of the list, but then uses your "running" or "current" list pointer -- nes -- as the list creator.

While you are creating the list, head remains pointed to the head of the list.

I made another modification, so that the line terminator happens after you've entered the number.

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