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.

From what I understand assert is a macro in C and supposedly if you use it at compile time but leave it disabled then there won't be overhead (which might not be correct I don't know). The problem for me is that what I'd like to do is get all the variables passed to my function and print out that output, but only if I want debugging enabled. Here is what I have so far:

int exampleFunction (int a, int b)
{
  #ifdef debugmode
  printf("a = %i, b = %i", a, b);
  #endif 
}

I'm wondering if there is any easier (and less ugly) method for doing something like this. xdebug for php has this feature and I've found is saves me an enormous amount of time when debugging so i want to do it for each function.

Thanks

share|improve this question
1  
The assert() macro is disabled entirely if NDEBUG is defined, so if that is defined in release mode there will be no overhead. –  David Thornley Jun 17 '09 at 19:17

7 Answers 7

up vote 11 down vote accepted

try this:

#ifdef debugmode
#define DEBUG(cmd) cmd
#else
#define DEBUG(cmd)
#endif


DEBUG(printf("a = %i, b = %i", a, b));

now, if you have debugmode defined, you get your print statement. otherwise, it never shows up in the binary.

share|improve this answer
    
Sadly you're left with a useless function call in its place but I +1 this in my struggle to be less of a purist. –  Kai Jun 17 '09 at 18:57
    
+1 My choice as well –  Tom Jun 17 '09 at 18:58
    
Hmm this left me with a compiler error of: `b' undeclared (first use this function) Not sure why –  John Baker Jun 17 '09 at 19:01
3  
@Kai - There is no useless function call when debugmode is undefined. The preprocessor replaces the printf with just a semicolon, that then gets translated to nothing in the executable. –  eduffy Jun 17 '09 at 19:04
1  
This should work with any C90 implementation, which puts it ahead of some of the solutions that only work with C99 functionality. –  David Thornley Jun 17 '09 at 19:18

Using GCC, I really enjoy to add, per file:

#if 0
#define TRACE(pattern,args...)   fprintf(stderr,"%s:%s/%u" pattern "\n",__FILE__,__FUNCTION__,__LINE__,##args)
#else
#define TRACE(dummy,args...)
#endif

and then in the code:

i++;
TRACE("i=%d",i);

i will be printed only when I activate the TRACE() macro in the top of the file. Works really great, plus it prints the source file, line and function it occurred.

share|improve this answer
if (MY_DEBUG_DEFINE) {
        do_debug_stuff();
}

Any half decent compiler would optimize the block away. Note you need to define MY_DEBUG_DEFINE as a boolean (ie 0 or not 0).

#define MY_DEBUG_DEFINE defined(NDEBUG)

If you happen to compile with maximum warning level, this trick avoids unreferenced argument.

share|improve this answer

Workaround to get vararg with preprocessors that don't support it

#define DEBUG

#ifdef DEBUG
#define trace(args) printf args
#else
#define trace(args)
#endif


int dostuff(int value)
{


    trace(("%d", value));

}
share|improve this answer

You can define PRINTF_IF_DEBUGGING as

#ifndef NDEBUG
#define PRINTF_IF_DEBUGGING(X) printf(X)
#else
#define PRINTF_IF_DEBUGGING(X)
#endif

This will centralize the #ifdefs in only one place.

share|improve this answer
    
That won't work if printf needs more than 1 argument. –  eduffy Jun 17 '09 at 18:54
    
Right. Unless you use variadic macros, the solution should be more like #define FOO(X) printf X to be used like FOO(("%some", args)); –  ephemient Jun 17 '09 at 19:19

Well, the problem with the PRINT_DEBUG type macros as given here, is that they only allow one parameter. For a proper printf() we'll need several, but C macros don't (presently) allow variable arguments.

So, to pull this off, we've got to get creative.

#ifdef debugmode
     #define PRINTF   printf
#else
     #define PRINTF    1 ? NULL : printf
#endif

Then when you write PRINTF("a = %i, b = %i", a, b);, in non-debug mode, it will be renders as (effectively):

 if (true) NULL;
 else printf("a = %i, b = %i", a, b);

The compiler is happy, but the printf is never execute, and if the compiler if bright (i.e, any modern C compiler), the code for the printf() will never be generated, as the compiler will recognize that path can never be taken.

Note, however, that the parameters will still be evaluated, so if they have any side effects (i.e, ++x or a function call), they code may be generated (but not executed)

share|improve this answer
2  
Gcc allows multi-args, see my answer on this question. –  0x6adb015 Jun 17 '09 at 19:11
1  
I believe something like this is in C99. –  David Thornley Jun 17 '09 at 19:15
    
I don't know why people are marking this down--- As far as I can see, it's the only answer which provides a) a Standard solution which b) requires neither a particular compiler nor a special syntax. It is EXACTLY what the OP asked for. –  James Curran Sep 22 '10 at 14:09

I would also print some other C preprocessor flags that can help you track problems down

printf("%s:%d {a=%i, b=%i}\n", __FILE__, __LINE__, a, b);
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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