Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Possible Duplicate:
What are variadic functions in accordance with C and C++?

I've seen ... argument in printf() function. Exactly HOW functions like printf or scanf work? How is it that they can have infinite input values?

share|improve this question

marked as duplicate by iammilind, Nim, Konrad Rudolph, Andy T, kapa Sep 6 '11 at 11:03

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  
The term you are looking for is "variadic functions". Please search for that. –  Mat Sep 6 '11 at 9:39
2  
You mean an infinite number of input arguments do you? And even that is a poetic exaggeration, as in practice the number of arguments, although can be high, surely is finite :-) –  Péter Török Sep 6 '11 at 9:43
1  
Don't use this in C++, it's not type-safe, and there are way better alternatives. –  Cat Plus Plus Sep 6 '11 at 9:55
1  
I think the OP is more interested in knowing HOW they work as in underlying process over the stack and stuff as opposed to how they are implemented using C/C++. –  Shahbaz Sep 6 '11 at 9:56

4 Answers 4

This relies on the C calling convention, which is that the caller pops the arguments from the stack.

Because it's the caller that knows how many arguments (and what size they are) it must communicate this to the callee in some manner. With printf() and family, this is via the format string. With execv and family, this is indicated by having a terminating NULL parameter.

The callee reads the arguments from the stack using the macros defined in the standard header stdarg.h.

From memory (sketchy), you need to define a variable of type va_list, which is initialised from the preceeding argument using va_start, as in:

void print(const char* format, ...)
{
  va_list args;

  va_start(args, format);


  /* read an int */
  int i = va_arg(args, int);

  /* read an char* */
  char* pc = va_arg(args, char*);


  va_end(args);
}

Obviously, you have to parse the format string to know whether to read an int, or a char*, or a double, or a ...

HTH

share|improve this answer

For that you have to know a bit about the underlying function call and argument passing on the stack.

When you call a function, a few things need to be written on the stack, such as return address, pointer to previous stack frame etc. Another part written on the stack consists of the arguments of the function. In C, the arguments are pushed on the stack from right to left (unlike for example Pascal). This way, the first arguments of the function is on the top of the arguments list on the stack.

Now, the way printf and scanf work is quite simple. They get a string as the first argument (which is on the top of the stack (I mean arguments list on the stack, but I write on the top of stack just for short)). Guided by that string, they try to retrieve other values from below where the format string is (on the stack). So, for example, if you call:

printf("%d %c %s\n", 0x12345678, 'a', "str");

What printf sees on the stack is (top of the stack is on the left):

<address of format string (4 bytes)>|0x78|0x56|0x34|0x12|0x61|<address of str (4 bytes)>

So, what it does is read the format string, reach %d, then read 4 bytes from below the address of format string (so it reads the |0x78|0x56|0x34|0x12| part) then sees `%c' and reads one character from after that (the |0x61|) etc.

You should note however that printf and scanf do this blindly. Therefore, if you send a double as argument of printf and read %d, it reads the same number of bytes (4), but interprets the bits as an int and not double --> What you get is gibberish. Also, if you have many %s (like %d, %cetc) but not enough arguments,printfandscanf` blindly go over the other stack variables and interpret them as data/pointers.

Finally, usually compilers now a day read the format string for you and do the proper casting themselves (although they shouldn't, but they are being nice). They usually also give you a warning if there is a mismatch between number of expected arguments in the format string and the actual arguments sent. However, you should always cast the arguments to the type you want to print if they differ. An example is sending a char and printing %d which if you test it would work just because your compiler automatically casts it.

share|improve this answer
    
Thanks @GriffinHeart, I always confuse my left and right (also right and write). –  Shahbaz Sep 6 '11 at 9:59

Here are some useful links:

http://en.wikipedia.org/wiki/Variadic_function

http://www.gnu.org/s/hello/manual/libc/Variadic-Functions.html

http://www.informit.com/guides/content.aspx?g=cplusplus&seqNum=138

Hope these help you.

Also, please take some time to search the web for these questions.

share|improve this answer

manual to va_*

Technically the function being called must have the exact information about the arguments it is called with in each particular case (in case of *printf() the information is passed in form of format string). Having such information the function can extract the arguments from its stack frame using trivial pointer arithmetic.

share|improve this answer

Not the answer you're looking for? Browse other questions tagged or ask your own question.