6

I've never run into this before in C++ but it's odd that it still compiles but doesn't do what I expected. Can someone tell me what it does do? Please see the code, more info follows.

#include <iostream>
using namespace std;

class Test{
    public:
        Test();
};

Test::Test(){ cout << "ctor" << endl; }

int main(void){

    Test t();  // this compiles but doesn't call the constructor

    return(0);
}

It will compile, but if I try to use "t" it won't. I was only dependent on constructor functionality, and my code didn't work as expected. The solution is to lose the parenthesis "Test t();" to "Test t;". My question is what is going on in the "Test t();" example, and what does the compiler think is happening that it lets it compile.

4
  • 5
    Look up most vexing parse.
    – chris
    Commented Dec 18, 2012 at 2:39
  • 1
    Welcome to your Rite of Passage. Commented Dec 18, 2012 at 2:40
  • The question is...did the compiler know what you were expecting? :)
    – Carl
    Commented Dec 18, 2012 at 3:03
  • Thanks for all the help. This was my first question on SO and I'm amazed it got answered so quickly. I laughed out loud when I saw the answer. It's obvious once you know you can declare functions in other functions. Commented Dec 18, 2012 at 21:07

2 Answers 2

5

This is the Most Vexing Parse. Basically, according to the C++ parsing rules, what you have there isn't an object of type Test named t, but rather a function declaration for a function t which takes zero arguments and returns a Test.

Incidentally, clang++ actually recognizes this situation and emits a warning, telling you that this probably isn't doing what you want.

5
  • Can we declare/define functions in other functions? I assumed not?
    – Karthik T
    Commented Dec 18, 2012 at 2:42
  • @KarthikT: I don't think you can define nested functions in C++, but you can certainly declare them. For example, this works just fine: int main() { void foo(); foo(); } void foo() { std::cout << "foo" << std::endl; } Commented Dec 18, 2012 at 2:45
  • @Karthik: Functions can be declared inside other functions. This is the case since C. Commented Dec 18, 2012 at 2:49
  • @AndreyT I see.. Does this add value? Looks like easiest way to fix this problem is to remove that feature.
    – Karthik T
    Commented Dec 18, 2012 at 2:50
  • @KarthikT: the fix, since c++11, is to use the {} syntax. Test t{}; is unambiguous.
    – rici
    Commented Dec 18, 2012 at 2:51
1

This is a common problem that is aptly named as the most vexing parse. Your line Test t(); can be interpreted in one of two ways.

  1. It can declare a variable t which is of type Test
  2. It can declare a function t(), which returns a Test value and takes no arguments

The C++ standard unfortunately requires the compiler to consider the second alternative, which is quite a vexing parse.

The easiest way to fix that parse is to get rid of the parenthesis and simply declare your variable as such :

Test t; // Will call the default constructor

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