-4

I am trying to print the address of the a[1] element. I know that it can be achieved by

cout << a[i];

but I just want to know why do I get the error message when I do this

cout << &(a+1);

#include <iostream>
using namespace std;

int main()
{
    int array[10];
    array[1]=3;
    cout<<"Address : "<<&(array+1);
    return 0;
}
2

For any array of pointer a and index i, the expression a[i] is exactly equal to *(a + i). From that we can draw the conclusion that a + i is a pointer which is equal to &a[i].

So when you try to do &(a + 1) that's really equal to &&a[1] which makes no sense and gives you an error.

0

Informally speaking, array + 1 doesn't exist as a variable (you can't, for example, set it to another value), so you can't take the address of it. More formally an lvalue is required; i.e. something that can be set to a value.

Hence &(array + 1) emits a compilation error: in your case with some helpful hints.

Did you want simply array + 1 for the address one beyond array in pointer arithmetic? In the evaluation of array + 1, array decays to an int* type.

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