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I am trying to implement a variadic function. I searched the web and ended up finding out that most examples handle only one type of arguments (for example calculating average of many integers). Im my case the argument type is not fixed. It can either involve char*, int or both at the same time. Here is the code i ended up with :

void insertInto(int dummy, ... ) {
   int i = dummy;
   va_list marker;
   va_start( marker, dummy );     /* Initialize variable arguments. */
   while( i != -1 ) {
      cout<<"arg "<<i<<endl;
             /* Do something with i or c here */
      i = va_arg( marker, int);
      //c = va_arg( marker, char*);
   }
   va_end( marker );              /* Reset variable arguments.      */

Now this would work okay if i only had to deal with integers but as you see i have a char* c variable in comments which i would like to use in case the argument is a char*.

So the question is, how do I handle the returned value of va_arg without knowing if it is an int or a char* ?

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5 Answers 5

up vote 10 down vote accepted

since you're doing c++ there's no need to use untyped C-style variadic function.

you can simply define a chainable method like

  class Inserter
  {
  public:
      Inserter& operator()( char const* s )
      {
          cout << s << endl;
          return *this;
      }

      Inserter& operator()( int i )
      {
          cout << i << endl;
          return *this;
      }
  };

then use like

Inserter()( "blah" )( 42 )( "duh" )

variant with templated insert operation commonly used for building strings.

cheers & hth.,

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1  
Are we missing some return *this? –  Arun Feb 5 '11 at 0:56
    
@Arun: yes indeed! very thanks. me fix. :-) –  Cheers and hth. - Alf Feb 5 '11 at 1:09
    
@Xeo: thanks for already fixing! –  Cheers and hth. - Alf Feb 5 '11 at 1:10
    
While this is neat, the operator<< version seems more common, maybe add them? :) –  Xeo Feb 5 '11 at 1:24

So the question is, how do I handle the returned value of va_arg without knowing if it is an int or a char* ?

You can't. There is absolutely no way to determine the type of a variadic argument. You have to specify it somewhere else. That's why functions like printf require you to give the type of the arguments in the format string:

printf("%s %i\n", "Hello", 123);  // works
printf("%s %i\n", 123, "Hello");  // also valid (though most modern compiles will emit a warning), but will produce garbage or crash
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yup good point! :P I ended up doing it by expecting correct input. Meaning that i assume that the order of the args is correct. I might try to work on checking it if i have the time :) –  aiwalee Feb 5 '11 at 11:29

You need some way of knowing. Consider how printf solves this, with a format string. It's not the only possible approach, but it's a well-known one.

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From http://en.wikipedia.org/wiki/Variadic_function#Variadic_functions_in_C.2C_Objective-C.2C_C.2B.2B.2C_and_D:

In some other cases, for example printf, the number and types of arguments are figured out from a format string. In both cases, this depends on the programmer to actually supply the correct information.

So, to handle multiple types, the insertInto() need a concept like format string.

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You can make the processing conditional on the dummy parameter. I have routines that take an "action" argument and treats the arguments differently based on the action

For example:

int i; char *c;
switch(dummy) {
    case 1:
        i = va_arg(marker, int);
        // do something with i
        break;
    case 2:
        c = va_arg(market, char *);
        // do something with c
        break;
}
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