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When I try using cout, it outputs a random number rather then the sentence I want. There is not compiler error, the program runs fine.

Here is my code:

//question.h
#ifndef _QUESTION_H_
#define _QUESTION_H_

using namespace std;
int first()
{
    cout<<"question \n";
    return 0;
}

#endif

//main.cpp
#include <iostream>
#include "question.h"

using namespace std;

void main(){
    cout<<""<<first<<""<<endl;
    cin.ignore();
    cin.get();
}

I'm fairly new to writing my own header files, so I'm not sure if I did something wrong with that or if there's a problem with visual studio.

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2  
first() returns an int but does some stream injecting... I don't even know what would happen if it was doing what you think you intend it to do. –  Grady Player Mar 6 '13 at 2:10
    
@GradyPlayer, Indeed. Here's an example where the output from the function is first: liveworkspace.org/code/3RyOu1%243 –  chris Mar 6 '13 at 2:15
    
Excellent example @chris, I was wondering if that buffer would get flushed first... Or if it called first into a register / tmp location before the other stream operation. –  Grady Player Mar 6 '13 at 2:19
    
This may look weird but is well-defined: the output is the first empty string, the string "question \n", the character '0', the second empty string, and a newline, in that order. This is because every invocation of operator<< provides a sequence point on either side. (If this didn't work it wouldn't be possible to chain cout << a << b << c << ... at all.) –  zwol Mar 6 '13 at 18:59
    
@Zack, Shouldn't it be the same thing as std::cout << i << ' ' << ++i;? That could print i i+1 or i+1 i. This could do the same thing and print "" "question \n" or "question \n" "". In the example I linked to, it prints "question \n" ""1 0 ""2, where ""1 and ""2 are the first and second empty strings respectively. –  chris Mar 7 '13 at 0:00

3 Answers 3

You're printing the address of the function. You need to call it:

cout<<""<<first()<<""<<endl;
               ^^

As mentioned in the comments, this doesn't have to output what you expect, either. The order in which arguments to functions (and that is just a bunch of function calls) is unspecified, so your function output could be in any position the compiler chooses. To fix this, put separate statements:

cout<<"";
cout<<first(); //evaluated, so output inside first() printed before return value
cout<<""<<endl;

It might not matter with the empty strings, but it will when you replace those with something visible.

Also, don't use void main. Use int main() or int main(int, char**) (see here). Don't use using namespace std;, especially in headers, as std has a lot of crap in it that is pulled in with that statement, leading to easy and confusing conflicts (see here). Finally, choose a name that does not conflict with identifiers reserved for the implementation as your include guard.

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There isn't an evaluation order issue in the OP's code. If corrected to call first instead of just taking its address, it can be relied upon to print @question \n0#$ where @ is the empty string to the left of first, # is the empty string to its right, and $ is endl. But I think it was meant to print just @question \n#$ -- the OP appears to have thought that this was how you write a "manipulator"-like iostream item. –  zwol Mar 6 '13 at 17:14

You are printing the address of the function first rather than calling it. But changing the function call won't fix your problem all by itself, because first writes to cout internally and then returns a number, which will be printed, which doesn't appear to be what you want.

If you want first to act like an <iomanip> thingie you have to jump through a few more hoops -- read that header to see how it's done.

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Use cout<<""<<first()<<""<<endl; you need to actually call the function, not print its address

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