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#include <stdio.h>
#include CONST15
#define CONST2 CONST2*CONST1
#define CONST3 CONST2+CONST2
int main(int argc,char**argv)
{
printf("%\n",CONST3);
}
  • You appear to have missed the #'s among other things (like the first #include), or failed to note details about your compiler and build system that allow it being written like your post. Otherwise it just appears to use constants – TerryP Aug 14 '10 at 17:12
  • Could you copy/paste the content of "styudio.h" file ? (Or at least verify this is not a type of "stdio.h" ? – paercebal Aug 14 '10 at 17:13
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    Can you please first explain what is unclear about that piece of code? – Amadan Aug 14 '10 at 17:13
  • you can see for yourself by generating a preprocessed file (for VC++, /P switch i believe, or it's available in the IDE .cpp file properties) – tenfour Aug 14 '10 at 17:13
  • 1
    Another typo: "%\n" is probably not what you wanted for the format string... Also, #include CONST15 is highly suspicious. – Amadan Aug 14 '10 at 17:15
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First, preprocessing, which is the step that expands #defined'd symbols, happens before actual compilation.

Then, I don't think such a symbol can be recursive, but it can be replaced. So if that is the full program, and assuming <stido.h> doesn't define a CONST15 or a CONST2, you won't get any reasonable results. My compiler gives an error on the #include line that doesn't specify what to include.

However, you might compile it defining some symbols at compile time, such as:

gcc -DCONST15='"math.h"' -DCONST1=3 -DCONST2=5 foo.c

This would give the #include something (harmless) to work with, and provide a value for CONST1 and CONST2.

Then the first define would set CONST2 to 3*5 (just as that, not 15), and then the second define would set CONST3 to 3*5+3*5.

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