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I have to implement a wrapper for malloc called mymalloc with the following signature:

void mymalloc(int size, void ** ptr)

Is the void** needed so that no type casting will be needed in the main program and the ownership of the correct pointer (without type cast) remains in main().

void mymalloc(int size, void ** ptr)
{
    *ptr = malloc(size) ;
}
main()
{
    int *x;
    mymalloc(4,&x); // do we need to type-cast it again?
                    // How does the pointer mechanism work here?
}

Now, will the pointer being passed need to be type-cast again, or will it get type-cast implicitly?

I do not understand how this works.

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1  
Why don't you try compiling it (remember to enable compiler warnings), and find out? – Oliver Charlesworth Jun 23 '12 at 19:18
    
@OliCharlesworth well I wanted to understand the type casting mechanism(needed/not needed) here.I will try compiling it though i am not looking at the correctness of the code but of the concept. – Raulp Jun 23 '12 at 19:20
up vote 3 down vote accepted

malloc returns a void*. For your function, the user is expected to create their own, local void* variable first, and give you a pointer to it; your function is then expected to populate that variable. Hence you have an extra pointer in the signature, a dereference in your function, and an address-of operator in the client code.

The archetypal pattern is this:

void do_work_and_populate(T * result)
{
     *result = the_fruits_of_my_labour;
}

int main()
{
    T data;                      // uninitialized!
    do_work_and_populate(&data); // pass address of destination
    // now "data" is ready
}

For your usage example, substitute T = void *, and the fruits of your labour are the results of malloc (plus checking).

However, note that an int* isn't the same as a void*, so you cannot just pass the address of x off as the address of a void pointer. Instead, you need:

void * p;
my_malloc(&p);
int * x = p;  // conversion is OK
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will this be void do_work_and_populate(T ** result) instead of void do_work_and_populate(T * result) – Raulp Jun 23 '12 at 19:24
    
@so: No. But be mindful of the possibility that T may itself be a pointer type! – Kerrek SB Jun 23 '12 at 19:26
    
great!! Got it ! – Raulp Jun 23 '12 at 19:33

Contrary to void *, the type void ** is not a generic pointer type so you need to cast before the assignment if the type is different.

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so while returning frmo the function void ptr will be typecasted automatically to int*?? – Raulp Jun 23 '12 at 19:25
    
there is an implicit conversion from object pointer types to void * type but there is no implicit conversion to void ** type. – ouah Jun 23 '12 at 19:26
    
ok so here ptr( i.e of type void will implicitly get converted to type of pointer being passed).Correct!! – Raulp Jun 23 '12 at 19:30
    
Cast may not solve the problem. (assume arch which have sizeof(int*)<sizeof(void*)) – asaelr Jun 23 '12 at 21:35
void ** ptr

Here, "ptr" is a pointer to a pointer, and can be treated as a pointer to an array of pointers. Since your result is stored there (nothing returned from mymalloc), you need to clarify what you wish to allocate into "ptr". The argument "size" is not a sufficient description.

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