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I using va_list like this:

void foo(const char* firstArg, ...) {
    va_list args;
    va_start (args, firstArg);
    for (const char* arg = firstArg; arg != NULL; arg = va_arg(arg, const char*)) {
         // do something with arg
    }

    va_end(args);
}

foo("123", "234", "345")

the first three arguments was passed to foo correctly, but where "345" is done,

 arg = va_arg(arg, const char*) 

set some other freak value to arg.

so What's the problem. I using llvm3.0 as my compiler.

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OK, i do it like this foo("123", "234", "345", NULL). i will test if it work. –  holsety Mar 30 '12 at 2:38
1  
You should really be passing (char*)NULL, as NULL may be defined as a plain 0 and the compiler has no way to implicitly know it's a pointer value without a cast. This is especially important if sizeof(int) != sizeof(char *) which is not that uncommon with 64-bit implementations. –  FatalError Mar 30 '12 at 3:30
2  
Not true, actually. In C11, §7.19 <stddef.h> states that The macros are NULL which expands to an implementation-defined null pointer constant; so only a broken implementation can have NULL defined in a way that is not equivalent to a null pointer. The wording in C99 in section §7.17 <stddef.h> is the same, and I believe C89 was essentially the same too. –  Jonathan Leffler Mar 30 '12 at 3:50
    
@JonathanLeffler Hm you make an interesting point. I was thinking back to c-faq.com/null/macro.html which is generally pretty reliable (albeit pedantic), but it's not really clear in their answer where it could be a plain 0. –  FatalError Mar 30 '12 at 4:12
    
echo "#include <stddef.h>\nNULL" | gcc -E -x c - => ((void *)0) while echo "#include <stddef.h>\nNULL" | gcc -E -x c++ - => __null. gcc 4.6.3 on Ubuntu 12.04 x86_64. See also c-faq.com/null/safermacs.html –  nodakai Feb 14 '14 at 0:03

2 Answers 2

C does not automatically put a NULL at the end of a ... argument list. If you want to use NULL to detect the end of the arguments, you must pass it explicitly. Some functions (such as printf) use earlier parameters to decide when they have reached the end of the arguments.

(Edit: And actually if you want to put a NULL at the end, you need to cast it to the appropriate type so that it gets passed as the correct type of null pointer.)

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Could you please provide extra info or link on how printf() figures out when it has reached the end of the arguments. Is the working of printf() exactly similar to the working of any other function with a variable number of arguments? –  pointer Jan 20 at 2:36
1  
It counts the number of percent signs. –  Raymond Chen Jan 20 at 4:10
    
I'm just assuming that printf() uses 2 pointers of type va_list(). One to keep the track on the arguments & other for the %. Is that right? –  pointer Jan 20 at 4:33
1  
You don't need a va_list to count percent signs in a string. –  Raymond Chen Jan 20 at 7:51

I think the loop should be as follows:

for (const char* arg = firstArg; arg != NULL; arg = va_arg(args, const char*))

The change is va_arg(args, const char*) instead of va_arg(arg/*<<==*/, const char*).

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