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I thought when assigning a vaule to a pointer, you should use * operator, but I saw a code like

char *a;
void *b;
b = "Hello";
a = b;
printf("%s", a);

This is legal when I compiled it and prints Hello. Doesn't need a pointer to void dereferencing?

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1  
You thought wrong. * is used for assigning to the pointee. –  Kerrek SB Jan 24 '13 at 15:31
    
Yes, my terminology is incorrect, but you know what I mean from the code above, right? –  kReoSo Jan 24 '13 at 15:33
    
There is no dereferencing involved in your code. There is only assignment of address to a pointer. For this assignment to work l.h.s and r.h.s have to be compatible i.e: of the same data type. A void pointer is a special pointer which can point to any type, you can typecast a void pointer back to the exact type it points to. In C you can do this without any explicit cast because it is a weakly typed language while in C++ one needs a explicit cast. –  Alok Save Jan 24 '13 at 15:49
1  
@Jong-BeomKim: I don't think it's just your "terminology". It feels much more like a genuine misconception, and the fact that you confuse source and target in the language is just a symptom. Once you think about this the right way, I'm sure the answer to this question would be totally obvious to you. –  Kerrek SB Jan 24 '13 at 15:52
    
@Kerrek SB: No, I know * is for assigning a value to what the pointer points. My question is just about the pointer to void. My C tutorial shows just a code example above and doesn't explain why you don't need * operator when a pointer to void is used. Anyway, thanks for the answer. I should use the precise terminology. –  kReoSo Jan 24 '13 at 16:10

4 Answers 4

This "works" because a void * and a char * are able to hold any type of pointer. You could get into trouble, if for example you used int *a; instead of void *a;.

However, your code isn't dereferencing a void pointer, and the printf function converts it to a char * when it pulls the argument out of the variable arguments in the list. So there is no dereference of a void pointer in your code. If your pointer didn't perfectly convert to a char * (for example if we had an int *a;) on some types of machines that don't address bytes without "extra information" (some machines have only 'pointers' to whole machne words, and extra information is used to store which byte within that word you want when reading bytes), then your printf may well have failed to operate correctly ["undefined behaviour"].

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A pointer to void does not need dereferencing, infact, dereferencing a void pointer is illegal. You can obviously cast any pointer to a void pointer, and cast a void pointer to any other pointer type.

That's why:

void *b = "hello world"; worked, so did char *a = b and then printing a out. what happens here is:

char *a; // declares a as a pointer to char
void *b; // declares b as a void pointer(which can hold an address)
b = "Hello"; // 'b' now holds the address, that points to the start of "Hello"
a = b; // now, 'a' contains the address that 'b' does
printf("%s", a); // prints the string, starting from the address pointed by 'a'.

Hence this is perfectly legal.

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There is no string type in C. You can treat a char* pointing to the beginning of a char array as a string. And that's exactly how printf treats a here.

As far as I remember, the C Standard demands that char* and void* be interchangeable.

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1  
The interchangeability of char * and void * isn't actually relevant here, because the conversion is X * -> void * -> X *, and this is guaranteed to be injective for all non-function types X, not just char. –  Dietrich Epp Jan 24 '13 at 15:40
    
Thank you, I think your answer is the closest answer to my question. I googled some time and found that the string literal itself is just an address, so the variable 'b' in the code is a pointer as well as the string literal. –  kReoSo Jan 24 '13 at 20:28
    
@Dietrich Epp: I think he just pointed out that there was no void* in the old K&R C and char* is used instead. –  kReoSo Jan 24 '13 at 20:37

b = "Hello"; This line allocates a bunch of char memory and assigns its address to void pointer variable b.

void pointers can store address of any other datatype. The only limitations with void pointers are:

  • cannot dereference void pointer for obvious reasons
  • sizeof(void) is illegal
  • you cannot perform pointer arithmetic on void pointers

However GCC assumes that sizeof(void) is 1 and allows pointer arithmetics on void pointers.

a=b; This is the typical char pointer a initialized to the address contained in void pointer b. This is legal but, if misused might have implications.

printf("%s", a); This is a simple printf statement.

Everything in this code is fine.

And yes you need to use * to assign a value to an allocated memory in pointer: Eg:

   char *c=malloc(sizeof(char));
   *c='a';

or

   char a='a';
   char *c=&a;
   *c='b';

Also you would be using the * to initialize another pointer when using double pointers.

   char *a=NULL;
   mymalloc(&a);


   void mymalloc(char **a)
   {
     *a=malloc(10);
     return;
   }

Hope this helps.

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