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Considering a linked list containing five elements. 1,2,3,4,5 a no '7' is to be inserted after two. we will have an head pointing to the first element of the linked list and ptr at the last. while inserting an element before 3 we will loop through the linked list starting from head to last and we will introduce another pointer(prev) to hold the previous pointers address.ptr will point to the current node and if a matching data is found(3) then we have to include the new node between 2 and 3. We can do it as we have previous pointer.How to do it without using a previous pointer.

EDITED:

#include<stdio.h>
#include<stdlib.h>
struct list
{
    int data;
    struct list* link;
};

struct list *head=NULL;
struct list *tail=NULL;

void createList(int value);
void displayList(struct list* head_node);
void insertNewNode();
int value;


int main()
{
    int i;
    for(i=0;i<5;i++)
    {
     printf("\nEnter the data to be added into the list:\n");
     scanf("%d",&value);
     createList(value);
    }
    printf("\nCreated Linked list is\n");
    //displayList(head);
    printf("\nInsert a node\n");
    insertNewNode();
    displayList(head);
    return 0;
}
void insertNewNode()
{
    int val;
    struct list* ptr=NULL,*new_node,*prev=NULL;
    new_node = (struct list*)malloc(sizeof(struct list));
    printf("Enter the data to be inserted!");
    scanf("%d",&val);

    for(ptr=head;ptr;ptr=ptr->link)
    {
        if(ptr->data == 3)
        {
          printf("Found");
          new_node->data = val;
          prev->link=new_node;
          new_node->link = ptr;
        }
        prev = ptr;
    }
}
void createList(int value)
{
    struct list *newNode;
    newNode = (struct list*)malloc(sizeof(struct list));
    //tail = (struct list*)malloc(sizeof(struct list));
    newNode->data = value;
    if(head == NULL)
    {
        head = newNode;
    }
    else 
    {
        tail->link = newNode;
    }
    tail = newNode;
    tail->link = NULL;
}
void displayList(struct list *head_node)
{
    struct list *i;
    for(i=head;i;i=i->link)
    {
        printf("%d",i->data);
        printf(" ");
    }
    printf("\n");
}
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1  
Rather than trying to describe your current code, why not just post some actual code? –  Oli Charlesworth Sep 4 '11 at 17:48
    
@Oli:I have posted the code here.The code posted will not be of good standard. –  Angus Sep 4 '11 at 19:18
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2 Answers 2

up vote 1 down vote accepted
void insertNewNode()
{
    int val;
    struct list* ptr=NULL,*new_node;
    new_node = (struct list*)malloc(sizeof(struct list));
    printf("Enter the data to be inserted!");
    scanf("%d",&val);

    for(ptr=head;ptr;ptr=ptr->link)
    {
        if(ptr->data == 2)
        {
          printf("Found");
          new_node->data = val;
          new_node->link = ptr->link;
          ptr->link = new_node;
        }
    }
}

Update: This is probably what you want:

void insertNewNode()
{
    int val;
    struct list* ptr=NULL,*new_node;
    new_node = (struct list*)malloc(sizeof(struct list));
    printf("Enter the data to be inserted!");
    scanf("%d",&val);

    for(ptr=head;ptr->link;ptr=ptr->link)
    {
        if(ptr->link->data == 3)
        {
          printf("Found");
          new_node->data = val;
          new_node->link = ptr->link;
          ptr->link = new_node;
        }
    }
}

Here:

if(ptr->link->data == 3)

you simply look ahead to check if next node has value that you need.

share|improve this answer
    
Thanks develerx but this is a search to be inserted after 2.but how to do it for a search to be inserted before 3 and without using prev pointer. –  Angus Sep 5 '11 at 1:19
    
I made an update. –  develerx Sep 5 '11 at 8:48
    
Thanks develrex.It was what absolutely i wanted. I was breaking my head to find out this simple concept.Thanks. –  Angus Sep 7 '11 at 17:23
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Let's call curr the pointer at the current element, next the pointer at the next element, and value the number stored.

Traverse the list until curr.value == 2, now just create a new_node with new_node.value = 7 and set new_node.next = curr.next and curr.next = new_node

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