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I'm learning c++,The macro behavior not as expected.

  1     #include<cstdlib>
  2     #include<iostream>
  3     #include<cstring>
  4     #define die(x) std::cout << x << std::endl ; exit(-1) 
  5     const char *help = "Usage: coffee --help --version";
  6     const char *version = "alpha";
  7     int main(int argc,char **argv)
  8     {
  9               if(argc<2||!strcmp(argv[1],"--help"))
 10                       die(help);
 11               if(!strcmp(argv[1],"--version"))
 12                       die(version);
 13 
 14               return 0;
 15               
 16     }

g++ -o sample ./*
./sample --help

Output:Usage: coffee --help --version

./sample --version  

Output:


I'm confused why --version didn't output string alpha.

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5  
A very good sample to demonstrate why its better to use a function definition instead of a macro. –  πάντα ῥεῖ Dec 31 '12 at 13:49
2  

4 Answers 4

up vote 6 down vote accepted

When std::cout << x << std::endl ; exit(-1) is expanded by the macro preoprocessor in these two lines

 9               if(argc<2||!strcmp(argv[1],"--help"))
 10                       die(help);

the resulting code is:

 if(argc<2||!strcmp(argv[1],"--help"))
       std::cout << help << std::endl; 
 exit(-1); 

Which is probably not what you wanted;

The common trick for "multistatement macros" is to use do { ... } while(0) around the statements you want to have in a macro.

You can use gcc -E or cl -E to get the output from the C preprocessor, so you can see what the compiler ACTUALLY sees.

Edit: I should point out that I personnaly would prefer, in this case, a "die(msg) function" rather than fixing up the macro. Then you can, for example, set a breakpoing in die() and find out how you got there when something isn't working right! You can't set a breakoint in a macro.

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1  
I'm aware of the do { } while(0) trick, but can't remember why { } isn't enough. Why is that? –  configurator Dec 31 '12 at 13:50
    
@configurator: The same reason that { } is ever enough for a multi-line if block. Or any block. –  Lightness Races in Orbit Dec 31 '12 at 13:50
    
@LightnessRacesinOrbit: Huh? –  configurator Dec 31 '12 at 13:51
    
if (x) macro; else ... will go wrong if you have #define macro { blah }. –  Mats Petersson Dec 31 '12 at 13:52
    
@configurator: Good question... [edit: oh, "isn't". not "is". okay] –  Lightness Races in Orbit Dec 31 '12 at 13:53

Just try to brutally replace the body of the macro and you will see why:

if(argc<2||!strcmp(argv[1],"--help"))
  die(help);

becomes:

if(argc<2||!strcmp(argv[1],"--help"))
  std::cout << help << std::endl;
exit(-1);

With no braces { } for the if statement, the body is made just of one instruction so the exit(-1) is always executed.

You would have discovered if by using an if / else if instead that and if / if couple since the second else if would have missed its parent.

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1  
haha "brutally" =) –  Lightness Races in Orbit Dec 31 '12 at 13:49

You forgot { }. Expand the macro manually and you'll see the result:

if(argc<2||!strcmp(argv[1],"--help"))
   std::cout << help << std::endl ; exit(-1);

i.e.

if(argc<2||!strcmp(argv[1],"--help"))
   std::cout << help << std::endl ;
exit(-1);
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Your code after substitution of macro

if(argc<2||!strcmp(argv[1],"--help"))
   std::cout << help << std::endl ; exit(-1) ;  //<-- this exit will work always.
if(!strcmp(argv[1],"--version"))
   std::cout << version << std::endl ; exit(-1) ;

correct way:

#define die(x) do {std::cout << x << std::endl ; exit(-1); } while(false);
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