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When I compile this program:

#include<iostream>

using namespace std; 

std::cout<<"before main"<<endl;

int main()  
{

}

...I see this error from the compiler:

error: expected constructor, destructor, or type conversion before '<<' token

Please help me understand what this means and what's wrong with my program?

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7  
The question is why most c++ compiler give such crappy error messages. –  log0 May 4 '11 at 9:11
    
Hopefully a smart compiler can generate better errors. –  Eric Z May 4 '11 at 9:19
    
Well, it's not easy to give a meaningful message in this case. Even clang says: "error: no type named 'cout' in namespace 'std'" and "error: expected unqualified-id" for the operator<<. –  Tamás Szelei May 4 '11 at 9:51
    
@Ugo: It's easy for humans to read and see the error because we are seeing more context than the compiler is seeing at the point of the error. The compiler has only seen what is before the point of the error (and maybee a token or two after the error as it tries to determine the error). So given this and an understanding of the C++ grammar the error becomes a lot more obvious. The compiler saw std::cout and is now looking for either 'constructor, destructor, or type conversion' as these are the only next tokens that would make a valid declaration or statement (and thus a valid program). –  Loki Astari May 4 '11 at 14:54
1  
@Martin I agree with you and I am aware of the issues one can encounter while writing a compiler (really). But sometimes it just make me sad. For example we had to wait gcc4.6 for "clearer diagnostics for missing semicolons after |class|, |struct|, and |union| definitions"... structs appeared in C almost 40 years ago :'(. –  log0 May 4 '11 at 16:03
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4 Answers

You're seeing that error because your

std::cout<<"before main"<<endl;

statement needs to be within the scope of your main() function (or some other function) in order for this program to be valid:

int main()
{
   std::cout<<"before main"<<endl;
}

Unrelated to your specific question, one extra point: as you are using namespace std, the explicit std:: on std::cout is redundant.

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4  
Returning an integer from main is optional. The standard states that an implicit return 0; is added before the closing brace in the main function. This is only valid for main, all other functions must return if their signatures specifies a return type. –  David Rodríguez - dribeas May 4 '11 at 9:19
    
but if there is a global object before main, inside that global object's constructor cout wokrs..i can't understand why it is not working before main –  abcd May 4 '11 at 9:19
1  
@David Rodriguez - Agreed, that's why I said "should be returning" rather than "must return". Even though it's optional, it's still good practice. –  razlebe May 4 '11 at 9:24
6  
Why is it good practice? –  jhasse May 4 '11 at 9:50
1  
@jhasse For clarity, I guess. The standard specifies (3.6.1/5) that not explicitly returning from main is the equivalent of return 0, but in my experience it never hurts to be explicit about it. It's not a problem with this tiny program here. –  razlebe May 4 '11 at 9:57
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Statements cannot be executed outside functions.

However, if you make that expression which is used to initialize a global variable, then that will be okay in the sense that compiler will not give any error or warning.

For example, the following code will print what you want to print:

#include <iostream>

std::ostream &gout = std::cout<<"before main"<< std::endl;

int main() { }

Output:

before main

Online demo : http://www.ideone.com/Hz4qu


Here I do almost the same thing as done in this topic:

Is main() really start of a C++ program?

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3  
In fact it's trivial to make a utility to generalize it: ideone.com/Iotcc –  GManNickG May 4 '11 at 9:46
    
@GMan: Very clever. :-) –  Nawaz May 4 '11 at 9:50
1  
This is problemantic in that it is prone to the initialization order fiasco. There is no guarantee that the initialization of gout happens after the initialization of std::cout so you might end up calling operator<< on an uninitialized cout -> undefined behavior –  David Rodríguez - dribeas May 4 '11 at 11:10
    
@David: You mean, if I write int global_i = 100; int global_j = 2 * global_i, then it is not guaranteed that global_i will be initialized before global_j? –  Nawaz May 4 '11 at 12:05
    
@Nawaz: If both are in the same translation unit, the order is guaranteed, if they are defined in different translation units, the order is undefined. I.e. /* a.cpp */ int a = 10; int b = 2*a; /* b.cpp */ extern int a; int c = 2*a; when main starts, a==10 and b==20, but c might be either 0 or 20 (0 as a being an int will be initialized to 0 before any other initialization occurs) –  David Rodríguez - dribeas May 4 '11 at 13:14
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You have to define the line inside a function.

std::cout<<"before main"<<endl;
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you cannot write

std::cout<<"before main"<<endl;

outside a function.

-- edit --
The single entry point of a c++ program is the main function. The only thing that may occur before the execution of the main function is the initialization of static/global variables.

static int i = print_before_main_and_return_an_int();
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yeah..that is evident from the output of my program...i want to know the reason... –  abcd May 4 '11 at 9:18
    
This is prone to order of initialization issues. There is no guarantee that cout will be initialized before i is. –  David Rodríguez - dribeas May 4 '11 at 11:53
    
@abcd: hmm? You asked what was wrong with your program. What is wrong is that you put the std::cout line before the main function. Are you now asking why it is an error to do that? –  jalf May 4 '11 at 13:06
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