0
#include<stdio.h>
#include<stdlib.h>
typedef struct {
    int val;
    struct node* next;
} Node, *NodePtr;
void makeInitialLinkedList(int a[], int n)
{
    int i;
    NodePtr rec=NULL;
    NodePtr head=NULL;
    for (i=0; i<n; i++) {
        NodePtr cur=(NodePtr)malloc(sizeof(Node));
        if (i==0) head=cur;
        if (rec!=NULL) rec->next=(node*)cur;
        cur->val=a[i];
        cur->next=NULL;
        rec=cur;
    }

    // test
    while(n--) {
        printf("%d ", head->val);
        head=(NodePtr)head->next;
    }
}
NodePtr copy(NodePtr head)
{
    return NULL;
}
int main()
{
    //Mission #2
    int initialDataArray[10]={5,3,2,8,9,7,0,6,4,1};
    makeInitialLinkedList(initialDataArray, 10);

}

I do not understand why this works. I did not make a name initially for the struct and only made a surname "Node" by typedef. Then how does "struct node* next" work correctly? is node* a kind of data types like int* or char*? I thought like this:

typedef struct strName {
    int val;
    struct strName* next;
} strSurName, *strPtr;

Does the type of pointer "next" and the initial name of struct have to same?

  • In general I believe it is good to have the same type, but it is up to you. It can be also of type void * – tilz0R Jun 8 '17 at 13:25
  • 1
    Don't hide pointer semantics behind a typedef just to have syntactic sugar. – StoryTeller Jun 8 '17 at 13:26
  • 1
    Not a good practice to typedef pointers; this is likely to lead to errors and confusion. – David Bowling Jun 8 '17 at 13:27
  • I know this is not good, but my stupid professor sticks to this way.. lol – keist99 Jun 8 '17 at 13:28
  • 1
    "I do not understand why this works." - well the code you've posted does not compile -- because node is not defined just as you thought – Ingo Leonhardt Jun 8 '17 at 13:30
2

With struct node* next as a member of your (unnamed) struct, you actually do two things - forward declare a structure struct node and define a member named next as a pointer to the (forward declared) struct node. Note that struct node, as it has been just forward declared, is incomplete and is an additinal, new structure that is different from the enclosing struct you actually wanted to refer to. Confer also struct forward declaration at cppreference:

A declaration of the following form struct name; hides any previously declared meaning for the name name in the tag name space and declares name as a new struct name in current scope, which will be defined later. Until the definition appears, this struct name has incomplete type. This allows structs that refer to each other:

struct y;
struct x { struct y *p; /* ... */ };
struct y { struct x *q; /* ... */ };

So It just seems as if you had a pointer to the same struct you are defining, but actually you are (forward declaring) and using a new structure. See the following example, which actually compiles.

struct known_struct {
    int a[20];
};

struct own_struct {
    int val;
    struct known_struct* known;
    struct own_struct *own;
    struct unknown_struct* unknown;
} test;

int main(){

    size_t sizeOfKnownMember = sizeof(*(test.known));  // gives 80
    size_t sizeOfMemberOwn = sizeof(*(test.own));  // gives 32
    // size_t sizeOfunknownMember = sizeof(*(test.unknown));  // invalid application of sizeof to incomplete type `struct unknown_struct`

    return 0;
}
  • You are right. It works because next is a pointer and you it is never actually dereferenced. Only the address is passed around and manipulated (which do not really requires node to be complete). If you actually try to print next->val then you will see the problem appearing cause at that point the compiler need to know the size of node which has only been forward declared. Great answer. – Davide Spataro Jun 8 '17 at 13:52
0

I do not understand why this works.

It doesn't, you should get compilation errors, like these with gcc 6.3 or 4.2.1:

prog.c: In function ‘makeInitialLinkedList’:
prog.c:15:35: error: ‘node’ undeclared (first use in this function)
         if (rec!=NULL) rec->next=(node*)cur;
                                   ^~~~
prog.c:15:35: note: each undeclared identifier is reported only once for each function it appears in
prog.c:15:40: error: expected expression before ‘)’ token
         if (rec!=NULL) rec->next=(node*)cur;
                                        ^

Live demo by Deduplicator.

is node* a kind of data types like int* or char*?

No. What you have there will result in an error, unless you define node yourself.

Does the type of pointer "next" and the initial name of struct have to same?

That's the idea.

  • this runs at dev c++ compiler – keist99 Jun 8 '17 at 13:36
  • @keist99 See the errors on Coliru: coliru.stacked-crooked.com/a/3512293b47e95856 – Deduplicator Jun 8 '17 at 13:37
  • @keist99 that's an old compiler. Try the code online, in Ideone for example and will get errors! Deduplicator nice, I will inject this link in my answer, if you don't mind. =) – gsamaras Jun 8 '17 at 13:39
  • anyway thanks: i will not follow my professor lol :D – keist99 Jun 8 '17 at 13:45

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