Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

It's the special property that void* can also be assigned a pointer to a pointer and cast back and the original value is received.

I read this line somewhere. Does it means void* and void** are same? What is the difference?

Edit

void* can hold any pointer. Then what's void** needed for?

share|improve this question
    
You need void** when you need to dereference it and find out what the void* it's pointing to is, or even change that void* to something else. You can't dereference void*, or shouldn't without heavy-duty safety goggles on. –  Owen S. Jun 12 '10 at 2:55
    
Well, if you want to think about it that way, what are any pointer types other than void* needed for? –  JohnMcG Sep 12 '10 at 12:34

6 Answers 6

up vote 46 down vote accepted

One points at a black hole.

The other points at the thing pointing at the black hole.


They're not really the same thing, but pointers can be converted to void *. You can convert int * to a void * because, well, it's a pointer. void ** is still a pointer (it just points to a pointer), and since it's a pointer, you can convert it to a void *. That make any sense?

That said, I don't think I've ever had a use for a void **, but if you needed an array of void *s, then the type would be void **. (In C) void * is often used to hold a pointer to some user data - but you won't know ahead of time what type that data will be. If you had an array of those, then void **.

Since you also have this tagged as C++: The previous case doesn't really apply: you could use a std::vector<void *>. Really, void * might be questionable - an abstract base might fit your purposes better. void * is useful mostly in C.

share|improve this answer
9  
+1. epic description. –  Femaref Jun 11 '10 at 22:58
2  
I've used void ** as a parameter to a function that called a function pointer passed to it. In this particular case, the baton was mutable. –  Joshua Jun 11 '10 at 23:11
1  
+1 again. very epic –  Aaron Jun 12 '10 at 0:26
    
An array of void*s is actually void*[n]. –  FredOverflow Aug 13 '12 at 8:23
    
@FredOverflow: Strictly speaking, yes. When I wrote the post, I was thinking more along the lines of a dynamically allocated array, or an array who's size is not known. –  Thanatos Sep 20 '12 at 19:59

A void** is a pointer to a void*. A void* can be converted back and forth to any pointer type (including void**). So you can do:

char* -> void*
void* -> void**
void** -> void*
void* -> char*

You can not do:

char* -> void**
void** -> char*

so they are not the same.

share|improve this answer

A void * can hold any pointer. Since there are no actual void objects, a void * is always a pointer to some other type.

A void ** is a pointer to a pointer to void, or the address of a void *, i.e., the address of a pointer to void. This is an actual type and doesn't have any magic properties.

But since a void * can hold any pointer, it can also hold, for example, a void **.

void **f(int x) {
   static void *y;
   static int *iy;
   y = &x;
   iy = &x;
   // return &iy; // not ok
   return &y; // ok
}
share|improve this answer
    
Keep in mind that the opposite, a void** can hold a void*, is NOT guaranteed. –  Crazy Eddie Jun 11 '10 at 23:06
    
Good point, I was trying to say that, actually. That's why that one return line, which attempts to put a void * into a void **, is commented out with the not ok note. –  DigitalRoss Jun 11 '10 at 23:27

if you want to store some pointer or anything you will probably use void*.

However if you want to write a function which can be able to initialize this magic pointer, then you need pass this argument to this function as void**

void   fun1();
int    fun2(int);
double fun3(long);
bool   fun4(int, long, double);


int rand(void** pp)
{
  switch(time()%4)
  {
    case 0: *pp = fun1; return 0;
    case 1: *pp = fun2; return 1;
    case 2: *pp = fun3; return 2;
    case 3: *pp = fun4; return 3;
  }
}

int main()
{
    void* pointer;
    int funId;

    funId = rand(&pointer);

    setCallback(pointer, funId);
}
share|improve this answer
    
Right idea, but you're confusing function pointers with data pointers--this is non-standard. Make that four different struct types instead and you're right on. –  Drew Hall Sep 12 '10 at 9:14

One major difference is that the rule you quote in bold does not apply to void**.

share|improve this answer

void* is a pointer (or a pointer to the beginning of a unknown type array). void* is a pointer to the address of a pointer (or a pointer to the beginning of a 2D array).

Also, if you are writing in C (and not in C++), then there is no by-reference parameter, only by value or by pointer.

E.g.

// By value C and C++
void MyFunction(int a)
{
}

// By pointer C and C++
void MyFunction(int* a)
{
}

// By reference C++ only
void MyFunction(int& a)
{
}

If you want a function that modifies the address of a pointer (e.g. void* ptr;)
and enables the calling code to by affected by the change,
then you need to pass a pointer by reference pass ptr to (void*&) and use ptr inside the function
or pass a pointer to a pointer (void**) and pass &ptr and use *ptr inside the function.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.