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Passing Variable Number of Arguments with different type - C++

I have a function that takes n arguments.

And I want to call it like, function_name(number_args - 1, input, args_from_console[], output)

How do I do that?

*the function that takes n arguments already is written and works... I just don't want to hard code the variables being passed in.

Edit: (adding code)

struct fann *ann = fann_create_standard(num_layers, 
                                            Config::NUMBER_OF_INPUT_NEURONS,
                                            Config::WIDTH_IN_BITS, 
                                            Config::WIDTH_IN_BITS, 
                                            Config::NUMBER_OF_OUTPUT_NEURONS);

the function above can have at least 3 arguments... the required arguments are num_layers, num_input, and num_output)

the optional arguments are the hidden layers of the neural network (what they are call isn't important.... but basically... it could look like this:

fann_create_standard(#layers, #input, #hidden1, #hidden2, #hidden3, #hidden4, ... #output);

what I want to be able to do, is pass in command line arguments to change how many layers, and what the values of each of the hidden layers are (the middle arguments in this function call), so that I don't have to re-compile the program every time I want to re-configure the network.

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marked as duplicate by Nawaz, David Titarenco, Bo Persson, Mark B, user7116 Apr 6 '11 at 17:32

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.

5  
Huh? Could you be more specific, I don't get it.. –  Kiril Kirov Apr 6 '11 at 16:58
    
Yes, please clean up this question. –  mmocny Apr 6 '11 at 17:00
    
1  
You explicitly stated that you are in C++, so I removed the C tag. –  Puppy Apr 6 '11 at 17:02
    
Exact duplicate: stackoverflow.com/questions/3555583/… –  David Titarenco Apr 6 '11 at 17:05

4 Answers 4

up vote 0 down vote accepted

Rewrite the function so it doesn't need that. Have it take a vector, instead of an array, then the number of arguments can be retrieved from the size() function.

If I understand you correctly, the function you want to call looks something like this(Ignore the argument types, I'm just using all ints for simplicity's sake)

int func(int n, int input, int args[], int & output);

And you don't want to have to figure out n. Just wrap the function, thusly:

int func_wrap(int input, std::vector<int> & args, int & output)
{
    return func(args.size() - 1, input, &args[0], output);
}
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Not possible, as this is an external lib =( –  NullVoxPopuli Apr 6 '11 at 17:10
    
@DerNalia: Sure it is, you just need to wrap it. See my update. –  Benjamin Lindley Apr 6 '11 at 17:21
    
I'll give it a go –  NullVoxPopuli Apr 6 '11 at 17:25
    
@DerNalia, heh! Better give it another go. –  Pete Wilson Apr 6 '11 at 17:42
    
this is actually very similar to the real solution... there is a function called fann_create_standard_array... which does exactly as what I've been looking for... I just need to read the documentation more =D –  NullVoxPopuli Apr 6 '11 at 18:12

I think what you're describing is that you want a variable number of arguments. It's called varargs, and this link should be helpful for you:

http://en.wikipedia.org/wiki/Stdarg.h#varargs.h

Unfortunately I see that your arguments are NOT all the same type. This is a problem. You'll need to use format strings (like printf) so that your code will be able to infer the correct type when it goes to fetch the data from the stack.

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2  
varargs should not be used in C++ and should be avoided altogether. C++0x variadic templates or boost::any would be better suggestions. –  David Titarenco Apr 6 '11 at 17:07
    
They aren't all the same type, I added to my question, the function itsself takes ints. –  NullVoxPopuli Apr 6 '11 at 17:12
    
Question is not about varargs. –  Pete Wilson Apr 6 '11 at 17:43

Hard-code the arguments. It is certainly the best alternative.

If there are really too many, package them into an appropriate data structure and rewrite the function to accept that instead.

Edit: I see that you are using an external library. Fortunately they already provide another function that accepts a data structure instead of a variable number of arguments.

FANN_EXTERNAL struct fann *FANN_API fann_create_standard_array(
    unsigned        int     num_layers,
    const unsigned  int     * layers
)

Simply use this instead.

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Hard-coding is the worst idea ever. –  NullVoxPopuli Apr 6 '11 at 17:11
    
@Potatosweater, nah, you're not grokking the question. –  Pete Wilson Apr 6 '11 at 17:39

SEE EDIT BELOW!! (I originally thought this had all the earmarks of pure homework)

Just reading your code for sense, could it be that your parameter "args_from_console[]" is really char **argv (or char *argv[]) that was passed to main( ), but presented to you here in disguise? In other words, does the caller of your function look something like this?

int
main ( int argc, char **argv ) {
   ...
   ...
  function_name(number_args - 1, 
    input, 
    argv,          // <-- from the command line, right? 
    output);
    ..
  return 0;
}

If so, then main( ) is giving to your function the tokenized command-line argument string it received when it started. This argument is a pointer to an array of character pointers. The first member of that array points to the first command-line argument; the second member points to the second command-line argument; and so on for each command-line argument that the user typed to start the main( ) program.

Question for you: How can you know how many discrete arguments were passed in to main( ) when it started?

EDIT: I edited this after the OP made his example plainer.

IF you just want to give the command-line arguments to the called function, just pass in both int argc; and char **argv and let him figure it out. Or you modify the called function to figure it out for him.

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