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I have a question for the exact meaning of a pointers phrase.

I have the following method:

myFunc(const void * p)
{
  ...
}

And it is being called by:

myStruct *st;
...
myFunc((char **)&st->arr);

I have experience with pointers, but in this case I still get lost with all these pointers and casting.. Can I get please an accurate explanation about how this case works?

Thanks

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it's not working if you call your function without the cast ? –  Alexis Jul 15 '13 at 8:17
    
It would help to see the definition of myStruct and what myFunc does with the pointer passed into it. –  Dai Jul 15 '13 at 8:17
1  
See this too –  Suvarna Jul 15 '13 at 8:17
2  
This typecast is wrong, don't use this code –  Grijesh Chauhan Jul 15 '13 at 8:17

3 Answers 3

up vote 0 down vote accepted

This seams to be bad quality code! Maybe not dangerous, as const appears in prototype.

myFunc(const void * p) accepts a pointer to anything and const should mean it won't touch it.

Now, st is a pointer to myStruct, so st->arr is the value of arr member and &st->arr is memory address of arr member. Assuming arr is an array, st->arr value is already a pointer.

So, (char**) is possibly the correct type of &st->arr, it is a pointer to a character array. And if it is the correct type, there is no need to cast!

You cast when you need to tell the compiler to handle your data as another data. It would make sense, in this case myFunc((const void *)&st->arr);

Anyway, without further information on myFunc, I belive that true programmer intention was myFunc((const void *) st->arr);

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the address of st->arr is being converted to a char** (i.e. the address where to find a pointer to a char). myFunc accepts pretty much anything (void*) and you must be careful to pass it something it knows how to handle.

Internally, myFunc can do something like this:

struct myStruct{
    char* arr;
};

void myFunc(const void* ptr){
    char** cPtr = (char**) ptr;
    (*cPtr)[1] = ...;
}

int main()
{
    struct myStruct s;
    ...

    myFunc((char **)&s.arr);

    ...
}

However, you should notice that this is extremely bad (as in "dangerouse") code.

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You are mixing C++ in a C topic. –  LS_dev Jul 15 '13 at 8:55
    
thanks, it was only for simplicity in writing the example though –  Stefano Falasca Jul 15 '13 at 9:00
    
And note there's a const, so (char**) ptr; is pottencialy dangerous! –  LS_dev Jul 15 '13 at 9:14

You are calling the method myFunc with a double pointer char ** and the same you are catching with the const void *ptr . In C a void pointer can hold the other pointer types like(char */float */int */...), later on we can typecast them when we are using.

So here a void pointer can able to hold a double character pointer and you can typecast the void pointer to a double character pointer later on like

    char **tempPtr = (char **)p;

Here const qualifier makes the pointer p as a constant data pointer, which means inside the function it wont change the data it is pointing to.

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