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In a file xyz.c

int p=2;  //global

#define sum(p,i) p+i

int main()
{
    printf("%d", sum(5,6));
}

output here would be 11 (and not 8); why?

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You can't try it and view the output? –  chris Oct 4 '12 at 5:37
    
@chris i want the reason also –  user1660982 Oct 4 '12 at 5:38

3 Answers 3

up vote 4 down vote accepted

Output is definitely 11.
Because p is not considered as a variable inside the macro, it's just like a token which has a invocation value; e.g. (5,6). The scope of the token is limited to macro scope.

Suppose you change the macro as below, then the output will be 8:

#define sum(q,i) p+i
      //   ^^^ token 'q' is unused, so (5,6) is replaced with 'p+6'
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Pre-processing happens before compilation. When the preprocessor encounters sum, it will replace it with the contents, i.e. your code translates to:

int main()
{
   printf("%d", 5+6);
}

so output 11. The preprocessor has no knowledge of any of your variables.

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The problem you can see if you see the .i(intermadiate file) of you program .The steps of a program to executable includes some steps as follows

1.preprocessing
2.compilation
3.assembler for object code
4.linking

use the command as follows for first step -preprocessing

cpp <your program>.c -o <any name to output>.i

if you do this then after excuting this you can see the .i file of your program there you wil see as follows

int p=2;



int main()
{
    printf("%d", 5 +6);
}

It is clearly visible why the answer is 11,as all the preprocessor replaces the value what you given first then the compilation done,so there is no 'p' to be used for global p after preprocesing.There is no p for next steps to use in the program.

so you got the answer 11.

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