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I have the same professor: I have read the forum:

http://stackoverflow.com/questions/2119558/c-help-understanding-how-to-write-a-function-within-a-function-listmap/2119913#2119913

It is very helpful understanding the concept of the function but I'm not sure if I am using it right...

Here is my code.. Let me know if I am on the right track...

Assume that I have an array of 10 linked lists in which the linked lists holds ints

Now I would like to sort the list calling the list_map(); function

So my main looks something like this:

int x = 10;  
LLIST *mylist[x];  
bzero(mylist, sizeof(LLIST *)*x);  
.  
.    
for(i=0; i< 10; i++)  
{    
 //Segfalt   
 list_map(mylist[i],sort);   
}

my list_map looks like:

void list_map( LLIST *list, void (*f)(void *) )  
{  
  printf("Sort");  
  f(list);  
}

and Sort:

void sort(LLIST *n) {  
//Sort Code  
}

The error I get is Segmentation fault when I run it.

Please excuse the lack of code, I know my sort function works, I have tested it already and it prints out each list. If you need to see something in more detail let me know I will provide it.

share|improve this question
1  
Can you use a debugger or printfs to narrow down the instruction that is segfaulting? This will lead quickly to an understanding of the problem –  Sam Post Jan 23 '10 at 4:12
    
I tried doing a printf within the for loop before the call and it doesnt print.. If a print f is before the loop it will print. –  MRP Jan 23 '10 at 4:17
    
It also doesnt do the printf in the list_map function –  MRP Jan 23 '10 at 4:18
    
Can you edit your question and mark the segfaulting instruction in your code? I'm pretty sure this is a memory allocation error but the debugging exercise is good for you :-) –  Sam Post Jan 23 '10 at 4:20
    
Note that 'printf()' (normally) buffers its output; you need to use 'fflush(stdout)' or 'fprintf(stderr, ...)' to ensure that your diagnostic printing completes properly. We also need to see what is represented by the two 'dot' lines, sadly. –  Jonathan Leffler Jan 23 '10 at 4:31

2 Answers 2

up vote 2 down vote accepted

bzero zeroes out memory it does not allocate memory, use malloc

int x = 10;  
LLIST **mylist;  
mylist = (LLIST**)malloc(sizeof(LLIST *)*x);  
.  
.    
for(i=0; i< 10; i++)  
{    
 //Segfalt   
 list_map(mylist[i],sort);   
}

void list_map( LLIST *list, void (*f)(void *) )  
{  
  printf("Sort");  
  f(list);  
}
share|improve this answer
    
That should fix it? Does my function calls look right? –  MRP Jan 23 '10 at 4:20
    
bzero is surely causing a segfault because its zeroing an undefined location in memory –  insipid Jan 23 '10 at 4:23
    
Ok I will give it a try. –  MRP Jan 23 '10 at 4:25
    
is it implemented like bzero? I'm not familiar with much C code –  MRP Jan 23 '10 at 4:31
    
ugh LLIST **mylist = (LLIST *)malloc(sizeof(LLIST *)*x).. sorry its late –  insipid Jan 23 '10 at 4:39

Are you allocating mylist? Based on what you have here it looks like anything which accessed mylist would cause a segfault. Are you sure that should be LLIST *mylist[x]; and not LLIST mylist[x];?

share|improve this answer
    
Let me edit above.. –  MRP Jan 23 '10 at 4:00
    
I forgot to add in bzero(mylist, sizeof(LLIST *)*x); –  MRP Jan 23 '10 at 4:02

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