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I am a beginner in C/C++ and i am trying to learn the pointers.

Here is my Code to create the array of pointers with each element in the pointer array, pointing to the element in the data array:

#include <iostream>
using namespace std;

//Pointers reference article
//https://www.programiz.com/cpp-programming/pointers-arrays

/* Array of pointers */
const int MAX = 5;
int main(){
    int arr[MAX] = {1,2,3,4,5};
    int* ptr[MAX];

    cout << "Create the handle of each element in data array to the ptr array: " << endl;
    for (int i=0; i<sizeof(arr)/sizeof(arr[0]);i++)
    {
        ptr[i] = &arr[i];
        cout<<"ptr["<<i<<"] = " << ptr[i] << endl;
    }

    cout << "Display the contents of array using 1:1 ptr array:"<< endl;
    for (int i=0; i<sizeof(arr)/sizeof(arr[0]);i++)
        cout<<"arr["<<i<<"] = " << *ptr[i] << endl;

    system ("pause");
    return 0;
}

The above program works as expected. But, if i change the pointer type from int to void during pointer declaration, i.e from int* ptr[MAX]; to void* ptr[MAX];

I have this error: cpp(22): error C2100: illegal indirection

Line 22: cout<<"arr["<<i<<"] = " << *ptr[i] << endl

Can someone please educate me on this error. Thanks in advance.

marked as duplicate by iammilind c++ Jan 15 '17 at 6:46

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • 4
    If you dereference a void *, you just get a void. I'm not really sure what you would expect that to do. – Dolda2000 Jan 15 '17 at 4:04
  • 1
    There is no language C/C++. One the distinct languages C and C++. This code is clearly not C. – too honest for this site Jan 15 '17 at 4:04
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    The whole point of a void pointer is that it can point at (almost) anything, regardless of type, so the type of what it points at is unknown. To dereference a pointer (as in *ptr[i], where ptr[i] is a pointer) the type of what it points at must be known. – Peter Jan 15 '17 at 4:04
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    @Dolda2000: You cannot dereference a void *! – too honest for this site Jan 15 '17 at 4:05
  • 3
    @Olaf: That was kinda my point. – Dolda2000 Jan 15 '17 at 4:05
4
int* ptr[MAX];

ptr is an array of pointer to int.

When you change to

void* ptr[MAX];

then ptr is an array of pointer to void. That does not cause an error on the the first cout

cout<<"ptr["<<i<<"] = " << ptr[i] << endl;  // ok - printing the address

But it's an error on the second:

cout<<"arr["<<i<<"] = " << *ptr[i] << endl;  // error - dereferencing void pointer

You cannot dereference a void pointer - that's what the error about. A pointer must be of specific type to be dereferenced.

2

You need to ask yourself one question - What does void mean?

So you have a void pointer - this means it points in to the void

That can be anything - Any int, A structure, An object, A float....

Get the picture

Then the compiler is trying to de-reference it - So it holds up its hands and say - I have not got a clue.

Either case it - or better still Avoid void pointers

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