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I have a variable argument function called from ruby script as follows:

static myMethod(VALUE exc, const char *fmt, ...)
{
  // Implementation of myMethod which requires all the arguments 
  // how to access the all arguments.
}

Can anyone tell me how to access all the arguments. Thanks in advance.

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1  
Choose between C and C++. In C++11, you would switch to variadic templates and ditch the varargs. –  Matthieu M. Sep 14 '11 at 10:01
    
@MatthieuM.: How does one call a C++ variadic template from Ruby? –  Hasturkun Sep 14 '11 at 10:09
    
@Hasturkun: I don't know Ruby... Still a C++ variable template will generate a mangled name for each combination of parameters, so if you can identify the name, you can then call it (using the appropriate convention) from assembly... all that matter afterwards is having the right wrapper, but once again, I don't know Ruby :) –  Matthieu M. Sep 14 '11 at 10:13
    
@MatthieuM Thanks for hlep, im using C++. –  Prajkata Sep 14 '11 at 10:16

2 Answers 2

What does "access the all arguments" mean? You can access the variadic arguments one by one by using macros from va_... group (va_start, va_arg etc.), the way it is usually done.

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can u provide the code to access that arguments, I called the function with following arguments, myMethod(exception, "hi this first arg", "this is second arg" "THirt arg" 100) –  Prajkata Sep 14 '11 at 10:00
2  
@Prajkata: There's no way to determine the number and the types of arguments from inside myMethod. You have to manually pass that information from the outside. For example printf uses its first parameter (format string) for that purpose. You also have fmt, which is probably supposed to serve the same purpose. Again, you have to develop a way to pass the number and the types of arguments. Before that nothing meaningful can be done. –  AndreyT Sep 14 '11 at 10:05
    
Thanks a lot for help. –  Prajkata Sep 14 '11 at 10:10

In C++11, the variadic templates have been introduced, which allow a type safe alternative for variadic functions.

The typical example is a variant of the traditional printf, from Wikipedia:

void printf(const char *s)
{
    while (*s) {
        if (*s == '%' && *(++s) != '%')
            throw std::runtime_error("invalid format string: missing arguments");
        std::cout << *s++;
    }
}

template<typename T, typename... Args>
void printf(const char *s, T value, Args... args)
{
    while (*s) {
        if (*s == '%' && *(++s) != '%') {
            std::cout << value;
            ++s;
            printf(s, args...); // call even when *s == 0 to detect extra arguments
            return;
        }
        std::cout << *s++;
    }
    throw std::logic_error("extra arguments provided to printf");
}

Note how T in the example above is a true type (though unknown in the template definition).

The main advantage is that you can safely pass any type/class to variadic templates, while for C-style variadic you are limited to built-in types (including pointers). Using variadic template still requires some learning though.

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May I ask HOW you are iterating over args? At which point in your code can you say This is args[2] (third of args, however that is shown)?? –  Shahbaz Sep 14 '11 at 11:29
    
@Shahbaz: It works like a cons-list (functional programming), that is, when I specify T value, Args... args I say capture the first item in value and put the rest in args. What is in args in unknown, and cannot be accessed directly, however I can pass it to another function here printf(s, args...); (note the ...), and at this point it will once again split the pack into head/tail, unless there is nothing left (the pack is empty), in which case the call is equivalent to printf(s) which matches the first overload. –  Matthieu M. Sep 14 '11 at 11:36
    
@Shahbaz: It's not iteration, it's recursion: Note the nested printf call with fewer arguments. Template programming has a very "functional" flavour. –  Kerrek SB Sep 14 '11 at 12:47
    
@Mattieu: The code is quite neat, but arguably it's much less of a formatting print now, because you have no control over how the arguments are formatted. –  Kerrek SB Sep 14 '11 at 12:48
    
I see. However, doesn't the OP ask how to access all the arguments rather than how to pass them to another function? For example if he wanted to actually write a function using those arguments (like another printf) and not just pass it around? –  Shahbaz Sep 14 '11 at 14:12

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