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I have a C++ program:

struct arguments
{
  int a, b, c;  
  arguments(): a(3), b(6), c(9) {}
};

class test_class{
  public:

    void *member_func(void *args){
      arguments vars = (arguments *) (*args); //error: void is not a 
                                              //pointer-to-object type

      std::cout << "\n" << vars.a << "\t" << vars.b << "\t" << vars.c << "\n";
    }
};

On compile it throws an error:

error: ‘void*’ is not a pointer-to-object type

Can someone explain what I am doing wrong to produce this error?

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Yes, there is. Have you tried giving args another datatype? –  Blender Oct 31 '11 at 3:34
2  
You don't have any "abstract types" (I assume you mean abstract base classes) in this example. You probably mean *(arguments *)args, which casts args from a void * to an arguments *, then dereferences it. Your current code tries to dereference a void * (which is illegal), then cast the dereferenced value to an arguments *, which is almost certainly not what you intended. –  Chris Lutz Oct 31 '11 at 3:34
    
@Chris Yeah that is what I was trying to do, thanks for the clarification. Btw, I thought structs and classes were considered to be abstract types while eg. int, float are non abstract. –  Matt Munson Oct 31 '11 at 3:37
1  
Also, your member_func returns void * but you don't have a return statement in it anywhere. Also, why do you need to use void *? Why can't you just use arguments * (or, better yet, just arguments, or const arguments&)? –  Chris Lutz Oct 31 '11 at 3:38
    
@MattMunson - No, "abstract" refers to classes (or structs) with pure virtual member functions. I don't know how much C++ you know, but if you're in a C++ course (which is my guess), then you'll get to that point eventually, so don't worry about it for now. –  Chris Lutz Oct 31 '11 at 3:39

4 Answers 4

up vote 5 down vote accepted

You are dereferencing the void * before casting it to a concrete type. You need to do it the other way around:

arguments vars = *(arguments *) (args);

This order is important, because the compiler doesn't know how to apply * to args (which is a void * and can't be dereferenced). Your (arguments *) tells it what to do, but it's too late, because the dereference has already occurred.

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1  
But please use static_cast here -- you'd get a better error message that way... –  Billy ONeal Oct 31 '11 at 4:30
    
@Billy what does static_cast do? –  Matt Munson Oct 31 '11 at 7:47
1  
@Matt: Same thing as a C style cast, except more limited. static_cast disallows removal of const, reinterpretation of a pointer type, and a few other nasty things. Generally speaking, anything that static_casts will work across platform/architectures. See section 5.2.9 of the C++ standard for more details (assuming C++03) –  Billy ONeal Oct 31 '11 at 14:32

You have the * in the wrong place. So you're trying dereference the void*. Try this instead:

arguments vars = *(arguments *) (args);
std::cout << "\n" << vars.a << "\t" << vars.b << "\t" << vars.c << "\n";

Alternatively, you can do this: (which also avoids the copy-constructor - as mentioned in the comments)

arguments *vars = (arguments *) (args);
std::cout << "\n" << vars->a << "\t" << vars->b << "\t" << vars->c << "\n";
share|improve this answer
    
Leaving it as a pointer is probably better, since it avoids a copy constructor. However, the OP should make the pointer (both arguments * and void *) const. –  Chris Lutz Oct 31 '11 at 3:35

Bare bones example to reproduce the above error:

#include <iostream>
using namespace std;
int main() {
  int myint = 9;             //good
  void *pointer_to_void;     //good
  pointer_to_void = &myint;  //good

  cout << *pointer_to_void;  //error: 'void*' is not a pointer-to-object type
}

The above code is wrong because it is trying to dereference a pointer to a void. That's not allowed.

Now run the next code below, If you understand why the following code runs and the above code does not, you will be better equipped to understand what is going on under the hood.

#include <iostream>
using namespace std;
int main() {
    int myint = 9;
    void *pointer_to_void;
    int *pointer_to_int; 
    pointer_to_void = &myint;
    pointer_to_int = (int *) pointer_to_void;

    cout << *pointer_to_int;   //prints '9'
    return 0;
}
share|improve this answer

*args means "the object(value) args points to". Therefore, it can not be casted as pointer to object(argument). That's why it is giving error

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