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typedef struct  {
 char name [25] ;
 char breed [25] ;
 int age  ; 
 struct animal *next ;
 } animal ;

 animal *ptr1 , *ptr2 , *prior ;
 ptr1 = (animal*)malloc( sizeof (animal) ) ;
 strcpy ( (*ptr1).name , "General" ) ;
 strcpy ( (*ptr1).breed , "Foreign breed" ) ;
 (*ptr1).age = 8 ;


 (*ptr1).next = NULL ;
 prior =ptr1 ;
 printf ("%s\n" , (*prior).name ) ;
 printf ("%s\n" , (*prior).breed ) ;
 printf ("%d\n" , (*prior).age ) ;
 printf ("%p\n" , (*prior).next ) ;
 free (ptr1) ;
 ptr1 = (animal*)malloc( sizeof (animal) ) ;
 strcpy ( (*ptr1).name , "General 1" ) ;
 strcpy ( (*ptr1).breed , "Abroad breed" ) ;
 (*ptr1).age = 24 ;
 (*ptr1).next = NULL ;
 (*prior).next = ptr1 ;

Here is the code to draw a linked list. The whole code when executes shows an error in the last line:

In function ‘main’: warning: assignment from incompatible pointer type [enabled by default]

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It might help if you point out where you get the error. As it is a compilation error (i.e. not an error from you program, but an error from the compiler about some problem with your code) the error message contains a line number. In the future, please post all messages, complete and unedited. –  Joachim Pileborg Sep 17 '12 at 10:47
1  
Please note that in the last line prior is pointing to a previously freed memory area; this could result in a crash of your program –  Jack Sep 17 '12 at 10:47
2  
Also, why using e.g. (*ptr1).next instead of the more normal ptr1->next? –  Joachim Pileborg Sep 17 '12 at 10:50
    
new user tip: it's always good to ASK the question, do not assume people will know exactly what you want to find out. When reporting error messages, you could say something about version of compiler which generated it. –  Piotr Wadas Sep 18 '12 at 0:20

5 Answers 5

up vote 0 down vote accepted

The "tag" name space (the name after the struct) and the identifier name space (the one you declare with typedef, eg.) are distinct in C.

The easiest, I find, is to always forward declare the struct tag and the typedef in one go:

typedef struct animal animal;

From then on you could easily use the typedef name even inside the declaration of the struct:

struct animal {
  ....
  animal* next;
};
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Your help and iterations made me sailed through..Thank you Folks. –  saurav verma Sep 27 '12 at 8:11
    
@sauravverma, if the answers helped you, please vote them up, and then chose the one that really answered your question and "accept" it. –  Jens Gustedt Sep 27 '12 at 9:08

change your structue definition to this

typdef struct Animal_
{
  char name [25];
  char breed [25];
  int age; 
  struct Animal_* next;
} Animal;

Without Animal_ the struct is an anonymous struct, and cannot have a pointer to it.

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1  
There is no need at all for the underscore. –  Jens Gustedt Sep 17 '12 at 12:07

Change your declaration to:

typedef struct animal {
    char name [25] ;
    char breed [25] ;
    int age;
    struct animal *next;
 } animal;

The structure tag animal has been added to the declaration. You now have the type animal an alias for struct animal.

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animal is the name of the typedef, not the struct. Try this instead:

typedef struct _animal {
    char name [25];
    char breed [25];
    int age; 
    struct _animal *next;
} animal;
share|improve this answer
    
You should never have global names with leading underscores as those are reserved. –  Joachim Pileborg Sep 17 '12 at 10:49
    
And in this case you don't even need the underscore, typedef struct animal { ... } animal; is perfectly valid. –  Jens Gustedt Sep 17 '12 at 12:06

That is actually a warning, not an error. I don't get why are you using (*s).m instead of s->m. It is simpler and more natural. I don't see function main in your code and the line where you get the error, I suppose all your code except the struct declaration is the function main. Try declaring your structure like this (you may also need to add a "typedef struct animal", depending on your compiler): struct animal { ... animal *next; };

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