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Here's a code i wrote to print out a string from a structure using a pointer:

#include <stdio.h>
#include <stdlib.h>
 struct xenon
{
    int size1;
    int marks[10];
    char *w;
    struct xenon *p;
} x1,x2;

main()
{
    x1.size1=10;
    x2.size1=6;
    printf("%d\n",x1.size1);
    printf("%d\n",x2.size1);
    (*p).w="my word";

    printf("%s\n",(*p).w);
    printf("%s\n",x1.w);
}

now i get an error saying i haven't declared the variable p in function main. But that should also be the case when i declare

x1.w="my word";
printf("%s",x1.w);

I also tried declaring the pointer variable just outside the structure and it still wont compile. Is something wrong with how i declared a pointer to the structure? or is it something else entirely?

share|improve this question
    
Well, you have defined x1 and x2. So you have x1.p and x2.p but they are not initialized in your code. You could set, for example, x1.p = &x2; – Steger Jul 13 '14 at 5:07
    
x1 and x2 are global variables, so they exist. – AntonH Jul 13 '14 at 5:09
up vote 3 down vote accepted

The compile-time error is occurring because p is a member of the structure, not a variable in scope. So refer to it as such, just as you've referred to its siblings.

(*x1.p).w="my word";

printf("%s\n",(*x1.p).w);

Once you fix that, you'll encounter the run-time error that Steger mentioned in the comment above. You could assign x1.p to &x2. But if you're trying to create a linked list, it would be more common that you would want to assign x1.p to a dynamically allocated structure.

share|improve this answer
    
You need to make x1.p point to valid memory before dereferencing it – M.M Jul 13 '14 at 5:41
    
Yes, and that's mentioned in the second paragraph above. – Andy Thomas Jul 13 '14 at 6:20
    
Thanks a lot for explaining :) – rookie_coder Jul 13 '14 at 6:30
    
however, i did not understand your point about linked lists...would you mind explaining it again? – rookie_coder Jul 13 '14 at 6:31
    
One reason for a structure to include a pointer to another instance of the same type is to create a linked list - a linear collection of elements which may be allocated independently and not necessarily adjacent in memory, with a length determined at runtime. I was speculating that might have been your intent. – Andy Thomas Jul 13 '14 at 17:22
(*p).w="my word"; 

p is a member of the structure. You have not declared any pointer variable to that structure. You need to declare the struct variable as below.

struct xenon
{
    int size1;
    int marks[10];
    char *w;
} x1,x2 *p;

Here memory for x1 and x2 is already allocated, so you can use it directly. But before using p either you need to allocate memory or you need to assign address of another struct variable.

p = malloc(sizeof(struct xenon);

or

p = &x1;

You can assign string literals directly by p->w="my word" or else you can allocate memory for that and copy the string like below.

p->w = malloc(strlen("my word") + 1);
strcpy(p->w, "my word")
share|improve this answer
    
i understood your point, but then how would you assign the string to the char *w?...as in, can you give the specific code? – rookie_coder Jul 13 '14 at 6:48
    
updated my answer. please check. – finalsemester.co.in Jul 13 '14 at 17:05

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