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I want to retain the beginning of the linked list in the code below. I don't think my code has any problems, but when I add two nodes and call print it will show me the first name of the second node.

EDIT: IT SHOWS NOTHING NOW! IT IS EMPTY

#include <stdio.h>
#include <string.h>
#include <ctype.h>
#include <stdlib.h>
struct node {
char Number[10];
char FirstName[10];
char LastName[10];
char FatherName[10]; 
char Email[20];
char SiteName[30];
struct node *next;
};
void print( struct node* list)
{
    printf("print1");
        printf(list->FirstName);
        printf("print2");
}
void addNode(struct node *head)
{
    struct node *current = head;
puts("*******Now you can insert a new person****");
    struct  node *newNode = malloc(sizeof(struct node));
            printf("FIRSTNAME: ");     
        gets(newNode->FirstName);
        printf("LASTNAME: ");      
        gets(newNode->LastName);
           printf("FATHERNAME: ");    
        gets(newNode->FatherName);
           printf("EMAIL: ");      
        gets(newNode->Email);
           printf("SITENAME: ");   
          gets(newNode->SiteName);
      //create new node

     newNode->next = 0;  // Change 1
        //check for first insertion
        if(current->next == 0){
       current->next = newNode;
       printf("added at beginning\n");
    }
    else
    {
        //else loop through the list and find the last
        //node, insert next to it
  while (current->next != 0) {
    current = current->next;
  }
  current->next = newNode;
  printf("added later\n");
    }
    }
//*************************************************************************
int main()
{
    /* This won't change, or we would lose the list in memory */
    struct node *root;   

    /* This will point to each node as it traverses the list */
    struct node *conductor;  
    root = malloc( sizeof(struct node) );  
    root->next = 0;   
       addNode(root);
    addNode(root);
    conductor = root; 
    //*********************************
    print(root);
    if ( conductor != 0 ) {
        while ( conductor->next != 0)
        {
            conductor = conductor->next;
        }
                        }
    /* Creates a node at the end of the list */
    conductor->next = malloc( sizeof(struct node) );  
    conductor = conductor->next; 
    if ( conductor == 0 )
    {
        printf( "Out of memory" );
        return 0;
    }
    /* initialize the new memory */
conductor = root;
if ( conductor != 0 ) {
 /* Makes sure there is a place to start */
    while ( conductor->next != 0 ) {
      puts( conductor->FirstName );
puts( conductor->LastName );
        conductor = conductor->next;
    }
    puts( conductor->FirstName );
}
    return 0;
}
share|improve this question
up vote 1 down vote accepted
gets(current->FirstName);

current points to the same struct node as head, the head node being passed to addNode. Therefore you'll be overwriting the values of the struct node passed to addNode and not the new node being created with the above code.

I'm assuming you should be storing the first name, last name, etc, in the node pointed to by newNode and not current.

You're code is also susceptible to buffer overflows by using gets; consider using fgets. I also hope FirstName, LastName, etc, are defined as char[]s and not char*, so they have memory allocated for them in order to store the strings.

share|improve this answer
    
Thanks,yes they defined as char [] ,i dunno fgets what should i do exactly? – Nickool Dec 25 '11 at 21:24
    
@nikparsa: fgets(newNode->FirstName, sizeof(newNode->FirstName), stdin);, so that no more chars than the size of the array are read into the buffer. Since newNode->FirstName is an array and not a pointer, you can use sizeof to get the size of the array. – AusCBloke Dec 25 '11 at 21:28
    
it shows me nothing I changed the code from gets(current->FirstName); to the thing that you told me and also i malloc the newnode firstly – Nickool Dec 25 '11 at 21:40
    
@nikparsa: We can't really tell what else is wrong with your code without seeing the full code. – AusCBloke Dec 25 '11 at 21:43
    
Now I updated the full CODE – Nickool Dec 25 '11 at 21:50

EDIT: Your print function now outputs nothing because the root node is empty. This is what your list looks like:

+------+        +------------------+       +-------------------+
| root |  --->  | first user entry | --->  | second user entry |
+------+        +------------------+       +-------------------+

So, if you replace

print(root);

with

print(root->next);

it will print the first entry made by the user.


OLD ANSWER: In this line:

gets(current->FirstName);

you overwrite the value of current->FirstName with the new value. Since current points to head, you overwrite the value of the first node.

To fix this, first malloc the new node and then gets the values into it (into newNode, not into current). Don't forget to allocate enough space to newNode->FirstName and the other fields, or gets will overflow your buffer. In fact, please don't use gets at all.

share|improve this answer
    
Thank you ok,I will change gets but how should i use malloc I have it for new Node I couldn't understand your mean – Nickool Dec 25 '11 at 21:23
    
@nikparsa: It depends. In your struct, are FirstName etc. char*s or char[...]s? If they are char[...]s, you can disregard my comment about allocating space for them. – Heinzi Dec 25 '11 at 21:25
    
they are char[] – Nickool Dec 25 '11 at 21:25
    
@nikparsa: Ah, ok, then it's fine. – Heinzi Dec 25 '11 at 21:26
    
well,now what should i exactly do? – Nickool Dec 25 '11 at 21:27

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