2

I am studying about threads in C++11 now, and I met the following line of code:

lock_guard<mutex> lg(mutex);

There is no variable mutex. mutex is only name of type.

Can anyone explain me how above line of code works?

Why compiler(GCC) doesn't print any error?

Complete code:

#include <iostream>
#include <thread>
#include <mutex>
#include <chrono>

using namespace std;

void do_something()
{
    lock_guard<mutex> lg(mutex);

    cout << "Working..." << endl;

    this_thread::sleep_for(chrono::milliseconds(3000));
}

int main()
{
    thread thd(do_something);
    thd.join();
}
3
  • What part of the code do you not understand?
    – Zacrath
    Jul 31, 2014 at 13:16
  • Some more context might be good. For example, is the function part of a class where mutex is declared? Jul 31, 2014 at 13:16
  • I would like to know how it is possible that I have no variable named mutex type mutex and I can compile code with this line. Is this line equal to lock_guard<mutex> lg(mutex());?
    – Dakorn
    Jul 31, 2014 at 13:32

2 Answers 2

8

The compiler thinks this is a prototype function declaration:

lock_guard<mutex> lg(mutex);

To be clear, the compiler parses this as the declaration of a function named 'lg' which takes a mutex as a parameter and returns a lock_guard instance.

#include <mutex>

int main()
{
    using namespace std;
    lock_guard<mutex> lg(mutex);
    return 0;
}

vc12 output : warning C4930 : 'std::lock_guard<std::mutex> lg(std::mutex)' : prototyped function not called(was a variable definition intended ? )
0
4

In C++ structure, class, enumeration and union names are in their own namespace (not a C++ namespace), which allows you to have variables with the same name as a structure.

For example:

struct SomeStruct
{
    // Member...
};

SomeStruct SomeStruct;  // Valid declaration

As for you not getting an error, if the function you use the shown it in a member function, then it could be that the class has a member variable with the name mutex.

6
  • 2
    One serious WTF would be uttered if I ever came across this in a code review. Jul 31, 2014 at 13:20
  • I completely forgot about this. Your answer reminded me. I think it's time for a refresher.
    – Zacrath
    Jul 31, 2014 at 13:23
  • Very interesting fact, but I think the answer by @BrandonKohn is actually the right one.
    – Mikhail
    Jul 31, 2014 at 13:36
  • 1
    @Dakorn It has to be a variable created somewhere else, for example in a class. There is no instance created in the line you show. I still think you need to include more context, like the function the line is in, if it's a class member function and if so show the class with relevant declarations. Jul 31, 2014 at 13:46
  • 1
    @Dakorn After seeing the code, it's definitely the answer by Brandon. Jul 31, 2014 at 13:56

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