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For one reason or another, I am messing around with the exit() function in c++. I am getting all kinds of strange errors from my mac running lion (64 bit). I am compiling using g++ -o -g -Wall.

Exhibit A:

 #include <iostream>
 int main(int arc, char *argv[]){
     exit(1);
 }

The Terminal output looks like this

 $ g++ -o -g -Wall test main.cpp
 ld: in test, can't link with a main executable for architecture x86_64
 collect2: ld returned 1 exit status

but $ g++ -o test main.cpp compiles fine.

using #include<stdio.h> or #include<stdlib.h> result in the same compilation error.

I am just wondering if anyone might be able to see immediately what is going on here?

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3  
Regardless of the exact problem at hand, the short answer to the question implied in the title is that you generally want to avoid exit in C++. –  Jerry Coffin Nov 11 '11 at 2:55
    
Thanks, I suppose I will use return in the future instead. –  wbarksdale Nov 11 '11 at 3:29

2 Answers 2

up vote 8 down vote accepted

test is the name of the binary to produce, your first argument list should be:

> g++ -g -Wall -o test main.cpp
               ^^^^^^^ -o has test for an argument
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And be aware that test is a built-in in many shells, so even if you have an executable named test in the local directory, just invoking test won't get it. (You can either invoke the program with ./test, or name it something else.) –  James Kanze Nov 11 '11 at 10:25

-o is meant to be followed immediately by the name of the output file. It is probably trying to use your old binary 'test' as a source file, incorrectly.

Try this:

g++ -o test -g -Wall main.cpp
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