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I am writing a function to find a value in a hash table. Why is there a run time error each it reaches line 6? Please Help!

int* value = 0;
printf ("find return value: %d \n", find(keyList[i], value));

The above two lines are the function calls used in main.

int find( char *key, int *p_ans ){
int hashValue = hash(key);
entry* newTable = table[hashValue];
while (newTable != NULL){
    if ((newTable -> key) == key){
        *p_ans = newTable -> val; // THE ERROR LINE
        return 1;
    }
    newTable = newTable -> next;
}
return 0;
}
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closed as too localized by amalloy, H2CO3, Eitan T, John Conde, Jeremiah Willcock Oct 28 '12 at 5:02

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What do you pass in as p_ans? –  chris Oct 27 '12 at 18:31
1  
How are you calling this function? –  DCoder Oct 27 '12 at 18:31
    
why not????????? –  user1559897 Oct 27 '12 at 18:32
    
Hint: crank up compiler warnings, and fix warnings so you get warning free code. This will catch a lot of bugs, possibly also you calling this function with somehow bad p_ans... –  hyde Oct 27 '12 at 18:35
1  
You're explicitly dereferencing a null pointer. If you don't see this, you should probably be still learning the basics of C much better instead of already writing this and that. –  user529758 Oct 27 '12 at 18:38

4 Answers 4

You need to allocate the int outside the function; either on the stack or on the heap. To allocate it on the stack, just do

int ans;
find(key, &ans);

To allocate it on the heap, do

int* p_ans = new int;
find(key, p_ans);
...
delete p_ans;
share|improve this answer
    
why? Isnt ans a pointer? the why do why use the address of a pointer? –  user1559897 Oct 27 '12 at 18:35
    
My code declares ans to be an integer. The address of ans (i.e., a pointer) is passed to find. In find, the name of this address is p_ans. –  Dabbler Oct 27 '12 at 18:37
    
Yep, it is working. but why cant i do int *value; printf ("find return value: %d \n", find(keyList[i], value)); –  user1559897 Oct 27 '12 at 18:38
    
@user1745626: Because the pointer is again not pointing to an int that was allocated somewhere. See my edit for how to allocate on the heap. –  Dabbler Oct 27 '12 at 18:41

You are setting this:

*p_ans = newTable -> val; // THE ERROR LINE

for this you have to malloc, at p_ans, but your p_ans pointer is 0, which is obtained from 'value' variable, which points to 0, that is the issue

add this line:

value = (int *)malloc(sizeof(int));
share|improve this answer

Because p_ans == NULL. Change your call to one of these:

Stack

int value;

if (find(keyList[i], &value)) {
    printf ("find return value: %d\n", value);
}
else {
    printf ("not found\n");   
}

Heap

int *value = malloc(sizeof(int));

if (find(keyList[i], value)) {
    printf ("find return value: %d\n", *value);
}
else {
    printf ("not found\n");   
}

free(value);

The point is that you need to have a space allocated for an integer. If you have a local variable int value then you can pass its address and find will change the variable's value.

If you have int *value then you've got a pointer. This pointer needs to point to an int somewhere. malloc allocates space for an int value.

Writing int *value = 0 doesn't create an int with a value of 0, it creates an int pointer with a value of NULL (0 means NULL when used as a pointer value). You can't dereference this NULL pointers. If you call find(keyList[i], NULL) then p_ans == NULL, and *p_ans dereferences a NULL pointer and crashes your program.

If it still doesn't make sense, consider these two code snippets. The first one will crash. The second one will work. Do you see why?

// Bad
int *pointer = NULL;
if (find(keyList[i], pointer))

// Good
int value;
int *pointer = &value;
if (find(keyList[i], pointer))
share|improve this answer
    
Probably. Or an uninitialized pointer. –  chris Oct 27 '12 at 18:32
    
Hey, look at that ;) –  chris Oct 27 '12 at 18:35
    
it works, but why cant i do int *value; printf ("find return value: %d \n", find(keyList[i], value)); –  user1559897 Oct 27 '12 at 18:37

It's because you pass a pointer to NULL. You don't have to actually declare a pointer to pass a pointer to a function, instead use the address-of operator &:

int value = 0;
printf ("find return value: %d \n", find(keyList[i], &value));
/* Using address-of operator here -------------------^ */
share|improve this answer
    
How about int *value = 0; printf ("find return value: %d \n", find(keyList[i], value)); This is not working either. –  user1559897 Oct 27 '12 at 18:44
    
@user1745626 No that won't work because you are declaring a pointer an making it point to NULL, which is an illegal address to access (in most cases). Either do as I said in my answer, declaring a normal and non-pointer variable and use the address-of operator (which returns a pointer) or allocate memory on the heap with e.g. malloc. –  Joachim Pileborg Oct 27 '12 at 18:47

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