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Programmatic way to get variable name in C?

I have checked some of the blogs before posting this here. I have tried the following snippet...

int a=21;

int main()
{
   cout<<#a<<a<<endl;
   return 0;
}

I am using g++ compiler on ubuntu 10.04. And I am getting the following error:

sample.cpp:17: error: stray ‘#’ in program. 

Please suggest me how to print the variables name .

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marked as duplicate by Daniel A. White, James McLaughlin, Bo Persson, ThiefMaster, dasblinkenlight Feb 25 '12 at 15:01

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
Why do you tag C if you're using g++ and cout ? –  cnicutar Feb 25 '12 at 14:48
5  
cout << "a" << endl; –  ouah Feb 25 '12 at 14:50
    

2 Answers 2

The # stringifying macro thing only works inside macros.

You could do something like this:

#include <iostream>

#define VNAME(x) #x
#define VDUMP(x) std::cout << #x << " " << x << std::endl

int main()
{
  int i = 0;
  std::cout << VNAME(i) << " " << i << std::endl;

  VDUMP(i);

  return 0;
}
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In which case VNAME() is just a convoluted way to express a string, and one might as well use "i". –  James McLaughlin Feb 25 '12 at 14:51
    
@JamesMcLaughlin - But you can make the macro more complex. –  Ed Heal Feb 25 '12 at 14:54
1  
@JamesMcLaughlin that's not quite the same: if you rename your variable to j and forget to update the "i" string, there would be no compile-time error; using VNAME macro on a variable ensures that the printed value stays "synchronized" with the compile-time name of the variable. –  dasblinkenlight Feb 25 '12 at 14:56
    
@dasblinkenlight What if you renamed your variable to j and there was another variable called i? There'd be no compile time error, and it'd show the wrong name. The VDUMP macro that just got added is far better. –  James McLaughlin Feb 25 '12 at 17:50
    
@jamesmclaughlin VDUMP suffers from the same problem as VNAME: in case you rename i to j but there is another variable called i, you'd see a correct but useless output (assuming that you wanted to see j, not i), so it is still wrong. my point was that a variable name is visible to the compiler, but the content of a string constant is not. –  dasblinkenlight Feb 25 '12 at 18:06

The # is for if you are writing a macro.

If your cout line were a macro, it would work the way you expect.

If you're not in a macro, you just type "a".

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