1

Could you help me to understand why I get unused-variable warning not for all unused static const variables? I prepared a simple code. Here are 2 files main.cpp and incl.h.

incl.h

#ifndef INCL_H
#define INCL_H

struct A 
{
    static A& instance()
    {
        static A a;
        return a;
    }
};

static const A a = A::instance();
static const A& b = A::instance();

#endif

main.cpp

#include "incl.h"

int main ()
{
    return 0;
}

I expect that there will be 2 unused-variable warnings (for a and b fariables), but in fact the warning is only one for variable b.

$ g++ -std=c++11 -Wall -Wextra -O2 -c main.cpp
In file included from main.cpp:1:0:
incl.h:14:17: warning: ‘b’ defined but not used [-Wunused-variable]
 static const A& b = A::instance();

Why doesn't the variable a cause the same warning?

  • I think you will see the same phenomenon with any class type. – molbdnilo Jul 31 '17 at 16:36
  • Which version of g++ ser you using? – Jonas Jul 31 '17 at 18:19
  • @Jonas, g++ version is 5.4.1 – Алексей Шалашов Jul 31 '17 at 18:58
1

For variable a the singleton instance is copied into the variable by assignment, so you could argue that it is being used.

  • Ok, let's concider that variable a is being used becuse it is created by copying. I propose to change variable b definition to "static const A& b = a;". In this case there will not be any warnings at all. Where is using varible b? Also I can create varible a by "static const A a = A();" And there also won't be warning for a. – Алексей Шалашов Jul 31 '17 at 18:54
  • I suppose that it happen due to optimization during compilation. If compiler sees object creation and the variable is not used then the compiler removes it. That is why we don't see the warning otherwise the variable is kept and warning is raised. But it's only my supposition. What do you think about it? – Алексей Шалашов Jul 31 '17 at 18:55

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