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I have a simple assignment that the professor wants us to do. Basically to pull in some numbers from a text file and load into a linked list. I don't want to get to much into the details but I have a basic question.

He provided us with a function like so:

INTLIST* init_intlist( int n ) 
{
INTLIST *lst;
lst = (INTLIST *)malloc(sizeof(INTLIST));
lst->datum = n;
lst->next = NULL;
return lst;
}

This function is used to initialize the linked list with the first element. Then he asked us to define a function with this signature:

int insert_intlist( INTLIST *lst, int n )

So I assume he just wants us to add to the linked list so I tried this:

int insert_intlist( INTLIST *lst, int n )
 {
 INTLIST* lstTemp;
 lstTemp = (INTLIST *)malloc(sizeof(INTLIST));
 lstTemp->datum = n;
 lstTemp->next = lst;
 lst = lstTemp;       
 free(lstTemp);          
 }

So what my thought process was is that it creates a temporary node, assigns the data value (Datum) and assigns the next pointer to point to where the current pointer is pointing at. Then I reassign the main pointer to this newly created temp node.

That way we have for instance 2 nodes:

[New Temp Node] -> [Prev Initialized Node]

When I step through the code it looks great...

Then back in main I have just a function to print the list:

                   while (lst!=NULL)
                      {
                       printf("The value is:%d", lst->datum);
                       lst=lst->next;
                      }

The problem is this only seems to print one digit (namely the first digit that I am reading in from the file, which I think is the last one in the list or at least I thought it was the last one in the list).

But it should keep going through as I have 10 digits in the file. I know the code is very dirty and I will clean it up...here is my entire main function if anyone needs more info:

#include <stdio.h>
#include <stdlib.h>
#include "intlist.h"

int main(int argc, char *argv[])
{
  char c;    /* Character read from the file. */
  FILE* ptr;   /* Pointer to the file. FILE is a
       structure  defined in <stdio.h> */
  int index=0;
  //INTLIST* aList[10]; //will use later

    /* Open the file - no error checking done */
  ptr = fopen("1.txt","r");
    /* Read one character at a time, checking 
       for the End of File. EOF is defined 
      in <stdio.h>  as -1    */

  if(ptr==NULL) {
    printf("Error: can't open file.\n");
    /* fclose(file); DON'T PASS A NULL POINTER TO fclose !! */
    return 1;
  }

  //aList[index] = malloc(sizeof(INTLIST)); WE NEED THIS LATER ON....
  INTLIST *lst=NULL;

  while ((c = fgetc(ptr)) != EOF)
  {
        if (c != ' ') 
        {
         //make sure it isnt a space
         int i = c - '0'; //get the value from the text file
             if(c=='\n') 
                 {
                      // aList[index]=lst;
                      // index++;
                      // aList[index] = malloc(sizeof(INTLIST));

                           while (lst!=NULL)
                              {
                               printf("The value is:%d", lst->datum);
                               lst=lst->next;
                              }

                           free(lst);
                           free(aList[index]);
                           return 0;
                          //new line in the file 
                         //create another linked list
                 }

            if (lst==NULL)
             lst = init_intlist(i);
            else
             insert_intlist( lst, i); 
        }
  }

  fclose(ptr);
  system("PAUSE"); 
  return 0;
}

Here is intlist.h for anyone who may need it:

#ifndef __intlist_h__
#define __intlist_h__
/* each entry in the list contains an int */
typedef struct intlist {
int datum;
struct intlist *next;
} INTLIST;
INTLIST *init_intlist( int n ); /* initializes the intlist with initial datum n */
int insert_intlist( INTLIST *lst, int n ); /* Inserts an int (n) into an intlist from the beginning*/
void list_append(INTLIST *list, void *datum); /* Inserts entry to the end of the list */
INTLIST* list_front(INTLIST *list); /*return the element at the front of the list, and remove it 
from the list*/
void list_map( INTLIST *list, void (*f)(void *) ); /*Applies a function to each element of the list */
void list_delete( INTLIST *list ); /* Deletes (and frees) all entries in the list */
#endif
share|improve this question
    
Is the header with the prototypes given by your professor? int insert_intlist( INTLIST *lst, int n ); with the comment that Inserts an int (n) into an intlist from the beginning is wrong: with the prototype, that can't be done. See my answer for details. –  Alok Singhal Jan 21 '10 at 3:42
    
@Alok: You can't do it naturally. Jerry got it, stick the new node in second, and swap payloads. I didn't read that carefully and assumed adding at the back. –  dmckee Jan 21 '10 at 3:52
    
@dmckee: aha! I like that bending of the rules - although I wonder if that's what the instructor wanted. Another possibility is that the return value is int, so maybe the function just returns the old head's payload, and replaces that with the new value! That will be a simple function indeed. –  Alok Singhal Jan 21 '10 at 3:56
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6 Answers

up vote 4 down vote accepted

A couple of issues here.

I'll start with a BAD bug:

int insert_intlist( INTLIST *lst, int n )
 {
 INTLIST* lstTemp;
 lstTemp = (INTLIST *)malloc(sizeof(INTLIST));
 lstTemp->datum = n;
 lstTemp->next = lst;
 lst = lstTemp;       
 free(lstTemp);             //   <<<<<  NO!
 }

You are still using that memory, so you can't free it.


Secondly, the proto-type supplied to you for insertion has no way to return a new front of the list, so you can not change the front of the list. This implies that you must add new nodes to the back, rather than to the front as you have done.

Also, the supplied return type of int probably means that he expects out the number of nodes in the list, which is no problem as you're going to have to walk the list to find the back anyway.

Have another go at it, you're not doing badly at all.

share|improve this answer
    
I tried commenting that part and its still the same issue. –  oJM86o Jan 21 '10 at 3:29
    
ok thank you for the kind words, let me see if i can add after the head of the list? –  oJM86o Jan 21 '10 at 3:33
    
ok dmckee I am going to try this: int insert_intlist( INTLIST lst, int n ) { INTLIST lstTemp; lstTemp = (INTLIST )malloc(sizeof(INTLIST)); lstTemp->datum = n; INTLIST pTemp; pTemp=lst; while (pTemp->next != null) { pTemp = pTemp->next; } pTemp->next=lstTemp; lstTemp->next=NULL; } –  oJM86o Jan 21 '10 at 3:43
    
Wow thanks for the hint that part worked...I will accept as I read through the answers but +1 for giving me a hint and not the answer! –  oJM86o Jan 21 '10 at 3:49
    
@jmh86: I actually think that Jerry was closer to the mark than I was, alas. I didn't read the comments in the header, but rather went with my intuition. –  dmckee Jan 21 '10 at 3:53
show 13 more comments

Working with code like:

int insert_intlist( INTLIST *lst, int n )
 {
 INTLIST* lstTemp;
 lstTemp = (INTLIST *)malloc(sizeof(INTLIST));
 lstTemp->datum = n;
 lstTemp->next = lst;
 lst = lstTemp;       
 free(lstTemp);          
 }

This has a couple of problems. First of all, the free(lstTemp) seems to be freeing the node that you just inserted in the list, which you probably don't want to do.

Second, you're passing the pointer to the list into the function -- which means the function can't modify that pointer, so when you assign to the pointer, you're only changing your local copy of it.

You have two choices: you can either pass in a pointer to that pointer (so you can modify the original pointer) or you can get clever and figure out a way to avoid needing to (but I won't give away the secret right away...)

share|improve this answer
    
I cannot modify the function signature as that is what the professor said we cannot do. I also commented the free(lstTemp) and I still had the same issue. –  oJM86o Jan 21 '10 at 3:30
1  
Yes -- while that's a bug, it's not the bug you noticed yet. If you have to use the same function signature, there's still a way, but it's a tad more tricky. The basic idea is that you add a new node after the current head of the list, but then swap the values between the nodes to get them back in order. –  Jerry Coffin Jan 21 '10 at 3:32
    
@Jerry: since the return type of the function is int, maybe the instructor wants the function to return the old head's payload, and replace it with the new value, thus making sense of the return type in the prototype, and simplifying the function considerably! :-) –  Alok Singhal Jan 21 '10 at 3:57
    
Just one question about this if the text file contains 1 9 7 2 and I he adds the 1 to the linked list and then he adds 9..the issue I see with adding it after the head and swapping values is eventually his linked list is backwards it then becomes 2 7 9 1. Because you are saying add it next to the head and swap data values...so is this really what he should do? It seems like adding it to the end is the way to go? I am only asking because I'm not a C developer but that is how I see it ? –  JonH Jan 21 '10 at 14:27
    
@JonH:It depends on what order he wants. He was originally trying to add items as the new head item, so I was telling him a way he could maintain the order that would produce. It's also possible to add items to the end, but it gives the opposite order, and takes longer. If you really don't care about the order, you can add each item immediately after the head of the list, and don't bother swapping. This gives a rather strange order: the first item first, and the rest in reverse order. Then again, if you don't care about order, you shouldn't use a linked list to start with. –  Jerry Coffin Jan 21 '10 at 14:51
show 3 more comments

This line:

lst = lstTemp;  

Only changes the value of lst inside the function. It won't propagate back to the copy of the pointer that the caller has.

You can either use a pointer-to-a-pointer, or if you can't change the function signature, insert somewhere other than the head of the list.

Though the typical way of handling this is to not point to the first element in the list - rather, you have some sort of list structure that holds a pointer to the first element, and some other information about the list (say, how many elements it has). Then you pass a pointer to that structure around.

share|improve this answer
    
Ok I understand that it dies after the function so I cannot change the function signature, can you give me more info about insert somewhere other then the head of the list? –  oJM86o Jan 21 '10 at 3:27
1  
You could walk through the list to the end (while(listNode->next) listNode = listNode->next;), and then stick it on there (listNode->next = newNode;) –  Anon. Jan 21 '10 at 3:29
add comment

In C, parameters are passed to functions "by value", meaning they are copied when you enter the function and any changes you make to them are not reflected back to the caller. That means that when you modify lst to point to your newly allocated memory it doesn't actually modify the caller's pointer to the list.

EDIT: As dmckee pointed out, you shouldn't free the memory in your insert function as you are still using it. That's definitely a bug, but it's not the one causing your problem.

share|improve this answer
    
I guess my question is since I cannot change the function signature..how to handle something like this. –  oJM86o Jan 21 '10 at 3:30
    
Why not point out the issue in the code to your professor? –  AJ. Jan 21 '10 at 3:32
    
As others have pointed out, you're going to have to insert the new node somewhere else in the list. It can either be at the end (thus keeping the order of the numbers), or you can just add it as the second node. If you want to add it at the end, you're going to have to get to the end of the list, and then make the last node point to the newly allocated one. If you add it second, you have to make sure the new node points to the node that was previously the second node, and then make the first node point to the new one. –  Tal Pressman Jan 21 '10 at 5:29
add comment

In C, everything is passed by value. If you want a function to change something, you need to pass its address to the function. Since in int insert_intlist( INTLIST *lst, int n ), you want to change the list head, you need to pass a pointer to it, i.e., the first parameter should be INTLIST **lst (see below too, though). But the function prototype is given and cannot be changed.

What that means is that you can't add a number to the beginning of the list—the caller can't know that you did so. So, you have to traverse the list pointed to by lst, and then add the new node anywhere down the chain. The professor probably wants you to add the node at the end, but he might have asked for some other condition.

With that information, let's look at the comments for the prototypes:

/* Inserts an int (n) into an intlist from the beginning*/
int insert_intlist( INTLIST *lst, int n );

The comment or the prototype is wrong. If your professor has given you this file, insert_intlist() cannot be written to satisfy the comment, since it can't return to the caller the new head. The prototype should be either:

/* Inserts an int (n) into an intlist from the beginning
   and returns the new head */
INTLIST *insert_intlist( INTLIST *lst, int n );

Or:

/* Inserts an int (n) into an intlist from the beginning */
int insert_intlist( INTLIST **lst, int n );

(Note the **.)

The header also has:

/*return the element at the front of the list, and remove it from the list*/
INTLIST* list_front(INTLIST *list);

This is correct. Note that you need to modify the list's head in list_front(), so you're returning the new head.

Finally, you don't want to free() anything in insert_intlist(). You want to keep the new node in the list, don't you? Once the caller is done with the list, he will have to call list_delete(), which will traverse the linked list, and free each node.

share|improve this answer
    
Nice and very well put. Will help anyone understand C :). –  JonH Jan 21 '10 at 14:32
add comment

I Agree with Alok. I Have the same problem/ Professor. I am new to C programming and I have been looking all over the web for forms and C webpages for help. I have came across a source that supports Alok.

I used

INTLIST *list_add(INTLIST **p, int i){

INTLIST *n;
    n = (INTLIST *) malloc(sizeof(INTLIST)); 
        if (n == NULL) 
    return NULL;   
    n->next = *p; /* the previous element (*p) now becomes the "next" element */

     *p = n;       /* add new empty element to the front (head) of the list */

      n->datum = i;
    return p; }

From my main I can pass in

INTLIST *list

list_add(&list, 1); list_add(&list, 2);

so when i print the list it prints 2 1

The professor suggested this:

INTLIST *mylist[N];

Where N is the number of rows of your input file. Then mylist[i] is a pointer to the ith linked list.

Okay Fine: create for testing purposes INTLIST *mylist[2];

I call the same functions:

list_add(&list[0], 1); list_add(&list[0], 2);

This prints out 2 1 ... Great,

But when I do this:

list_add(&list[1], 3); list_add(&list[1], 4);

I get a Segmentation fault..

share|improve this answer
    
The Segmentation fault comes when I try to print the list not during the list_add(); –  MRP Jan 22 '10 at 16:19
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