Can anybody tell me what is wrong in the following code when I initialize a global array and want to print its value outside main() function

#include <iostream>

using namespace std;

int global_array[5] = {10,20,30,40,50};

cout << global_array[2];

int main()
{
cout << "Hello World!" ;
}

The error keep popping is

error: 'cout' does not name a type|
  • cout has to be inside the main or atleast in cpp classes that declared out side of main or even a functions if you like so, – MORTAL Jan 14 at 6:03
  • 1
    It seems you are confusing C++ with languages like PHP or JavaScript. What do you expect to happen in your program? Do you expect the array to be printed first and "Hello World!" second? If so, why? – Christian Hackl Jan 14 at 11:38

The statement cout << global_array[2]; is not a declaration (it is an expression). Only declarations are allowed outside of functions.

So, if you want to print anything outside of main function, you can only do so by having the expression within another function.

I think the problem is that the code you have that does the printing is outside of any function. Statements in C++ need to be inside a function. For example:

#include <iostream>

using namespace std;
void hello();

int global_array[5] = {10,20,30,40,50};

void hello()
{
cout << global_array[2];
}

int main()
{
hello();
cout << "Hello World!" ;
}

Before asking a question, you can search: ‘cout’ does not name a type

Thanks you.

if you want to call it from outside the main it should be in a function something like this

#include <iostream>
using namespace std;

int global_array[5] = {10,20,30,40,50};

int pre()
{
    cout << global_array[2];
    return 0;
}

int x = pre();

int main()
{
    cout<<"Hello World";

    return 0;
}

as i mentioned it on comment it can be done via c++ classes.

#include <iostream>

int global_array[5] = { 10,20,30,40,50 };

struct foo
{
    foo()
    {
        std::cout << global_array[2] << std::endl;
    }
};

foo f;

int main()
{
}

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