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If I declare an array like:

int *array; 
array=(int *)malloc(10*sizeof(int));

And... I want to know if the array[5] is empty, what could I do?

if(*array[5]==NULL){
    printf("is it correct? ");
}

Thanks in advance!

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Use calloc to zero-initialise the array –  James Nov 2 '12 at 13:37
    
There is no such thing as "empty". You have to rethink. –  Kerrek SB Nov 2 '12 at 14:03

3 Answers 3

If you fill the array with NULLs before doing anything with it, then put NULL in an array slot after 'emptying' it, then yes, then you need code like so:

if (array[5] == NULL) {
    printf("Cell 5 is empty");
}

You don't need the *.

Also, malloc won't prefill this with NULLs, so don't rely on that.

Note however that in this case, putting NULLs in the array wouldn't make much sense. NULL is a special value for an empty pointer, which the individual elements of array are not. In this case, you'd want to just store some other 'empty' value, such as 0 or -1, as your situation demands.

If you did want array to store pointers, you need to change its declaration to something like this:

int **array

Which makes it a double pointer, or an array of pointers depending on how you use it. Allocating it could work like so:

int **array;
array = malloc(sizeof(int*) * 10);

At that point, each element of array is a pointer, which you could then dereference with the * operator.

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When you say fill the array with nulls, I think something like this: for(i=0;i<10;i++){ array[i]=NULL; } is it correct? –  Frank Progamer Nov 2 '12 at 13:39
    
@FrankProgamer Yes, that's one way to do it. There are also some standard library functions you can use to initialize blocks of memory to a value, but that's the most obvious way. –  Telgin Nov 2 '12 at 13:43
    
Telgin, but... if I try to do that, "assignment makes integer from pointer without a cast" –  Frank Progamer Nov 2 '12 at 13:47
    
@FrankProgamer Oh, wait, yes that makes sense. Sorry, NULL is a pointer, but the individual elements of array are not pointers. If you want them to be pointers, you need to declare array as int **array. If you just want integers in array, then you want to assign 0 instead, or some other 'empty' value. I'll update my answer to reflect this. –  Telgin Nov 2 '12 at 14:23

array[5] is an un-initialized int. array[5] already returns the int at that location, since array is an int*, so dereferencing it doesn't make sense.

It's not empty, and it's also illegal to read from it.

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No use * or [] use

*(array+5) == NULL

or

array[5] == NULL

but not both since array is a pointer to an int, or an int array (it is the same thing, it depends how you want to see it). *array[5] would be the integer pointed by the int pointer at slot 5, equivalent to **(array+5). Beware that you must set your memory to 0 after malloc if you want to test NULL. with memset(array, 0, 10*sizeof(int)).

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could I use a for to fill my array with NULLS? –  Frank Progamer Nov 2 '12 at 13:43
    
@Frank yes you can, but it would be less efficient memset is often otptimzed in assembly –  Alain R. Nov 2 '12 at 13:45
    
but... if I try to do that, "assignment makes integer from pointer without a cast", anyway, thanks for helping –  Frank Progamer Nov 2 '12 at 13:51
    
Oops, I think I just misleaded ... integers are not objects in C, and hence not pointers ... testing with NULL is equivalent to test with 0 but is it what you want ? 0 = NULL ? to compile this, you have to cast. However, Though my remarks about pointer arithmetic are valids, I think Luchian has the best answer. :-) –  Alain R. Nov 2 '12 at 13:57

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