3

I am trying to get the addresses of each character in the array as follows:

#include <bits/stdc++.h>
using namespace std;

int main() {
    char arr[] = {'a', 'b', 'c'};

    cout<<&arr[0]<<endl;
    cout<<&arr[1]<<endl;
    cout<<&arr[2]<<endl;

    return 0;
}

But the output I am getting is as follows:

abc0╒@
bc0╒@
c0╒@
Press any key to continue . . .

The output does not look like an address with hexadecimal digits, but just some random characters. Am I missing some concepts here? I want to get the address of each character in the array arr.

7

The type of &arr[i] is a char*.

The class of which cout is an instance has an overloaded << operator for a const char*. It treats the pointer as the start of a NUL-terminated string, and outputs the data as text.

You are observing the effects of undefined behaviour as a NUL-terminator is not reached. If you had written

char arr[] = {'a', 'b', 'c', 0};

then the program behaviour would be defined.

If you want to output addresses then use cout << (const void*)&arr[0] << endl; &c.

  • @Peter: Yes you're correct. Thank you, I've taken out the sloppiness. (Do please feel free to downvote answers for imprecision - it's not to be taken personally.) – Bathsheba Mar 4 at 10:24
2

If you want to print out the address, you could cast them (from char*) to void* firstly.

cout<<static_cast<void*>(&arr[0])<<endl;
cout<<static_cast<void*>(&arr[1])<<endl;
cout<<static_cast<void*>(&arr[2])<<endl;

Otherwise, they will be considererd as c-style string, and the content of the string is trying to be printed out. Since arr doesn't have the null terminator '\0' at last, the behavior is undefined here.

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